CONTACT LENS PRODUCT
20170227790 · 2017-08-10
Inventors
Cpc classification
A61K47/34
HUMAN NECESSITIES
G02C7/104
PHYSICS
C08L33/08
CHEMISTRY; METALLURGY
A61K9/06
HUMAN NECESSITIES
C08L33/26
CHEMISTRY; METALLURGY
A61K47/22
HUMAN NECESSITIES
G02C7/049
PHYSICS
C08L33/08
CHEMISTRY; METALLURGY
C08L33/10
CHEMISTRY; METALLURGY
A61K47/32
HUMAN NECESSITIES
C08L33/26
CHEMISTRY; METALLURGY
C08L101/14
CHEMISTRY; METALLURGY
A61K47/14
HUMAN NECESSITIES
C08L33/10
CHEMISTRY; METALLURGY
International classification
G02C7/10
PHYSICS
A61K47/14
HUMAN NECESSITIES
A61K9/00
HUMAN NECESSITIES
A61K47/34
HUMAN NECESSITIES
A61K47/22
HUMAN NECESSITIES
A61K38/16
HUMAN NECESSITIES
A61K9/06
HUMAN NECESSITIES
Abstract
A contact lens product includes a contact lens and a buffer solution. The contact lens is immersed in the buffer solution, and the buffer solution includes a cycloplegic agent.
Claims
1. A contact lens product, comprising: a contact lens; and a buffer solution, wherein the contact lens is immersed in the buffer solution, and the buffer solution comprises a cycloplegic agent; wherein a weight percentage concentration of the cycloplegic agent in the buffer solution is ConA, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the following conditions are satisfied:
0%<ConA≦1%;
0%<Avi≦80%;
0%<Abl<100%; and
0%<Auv<100%.
2. The contact lens product of claim 1, wherein a composition for manufacturing the contact lens comprises at least one visible light absorbing agent.
3. The contact lens product of claim 2, wherein the visible light absorption rate of the contact lens is Avi, and the following condition is satisfied:
5%≦Avi≦70%.
4. The contact lens product of claim 2, wherein the visible light absorbing agent is 1,4-bis[4-(2-methacryloxyethyl)phenylamino]anthraquinone or 1,4-bis[(2-methacryloxyethyl)amino]-9,10-anthraquinone.
5. The contact lens product of claim 1, wherein a composition for manufacturing the contact lens comprises at least one short-wavelength light absorbing agent.
6. The contact lens product of claim 5, wherein the blue light absorption rate of the contact lens is Abl, and the following condition is satisfied:
10%≦Abl≦80%.
7. The contact lens product of claim 5, wherein the short-wavelength light absorbing agent is 4-(phenyldiazenyl) phenyl methacrylate or reactive yellow 15.
8. The contact lens product of claim 5, wherein the ultraviolet light absorption rate of the contact lens is Auv, and the following condition is satisfied:
40%≦Auv<100%.
9. The contact lens product of claim 5, wherein the short-wavelength light absorbing agent is 2-(2′-hydroxy-5′-methacryloxyethylphenyl)-2H-benzotriazole, 2-(4-benzoyl-3-hydroxyphenoxy)ethyl acrylate, 3-(3-(tert-butyl)-4-hydroxy-5-(5-methoxy-2H-benzo[d][1,2,3]triazol-2-yl)phenoxy) propyl methacrylate, 1,3-bis(4-benzoyl-3-hydroxyphenoxy)-2-propyl methacrylate, 1,3-bis(4-benzoyl-3-hydroxyphenoxy)-2-propanyl acrylate or N-(4-hydroxy-3-(5-methoxy-2H-benzo[d][1,2,3]triazol-2-yl)phenyl)methacrylamide.
10. The contact lens product of claim 1, wherein the contact lens is made of a silicone hydrogel.
11. The contact lens product of claim 10, wherein a composition for manufacturing the silicone hydrogel comprises at least two monomers, the monomer is 2-hydroxyethyl methacrylate, 3-methacryloyloxypropyltris(trimethylsilyloxy)silane, N-vinyl-2-pyrrolidinone, N,N-dimethyl acrylamide, methacrylic acid, methyl methacrylate, 3-(3-methacryloxy-2-hydroxypropoxy)propylbis(trimethylsiloxy)methylsilane or (3-acryloxy-2-hydroxypropoxypropyl)terminated polydimethylsiloxane.
12. The contact lens product of claim 1, wherein the contact lens is made of a hydrogel.
13. The contact lens product of claim 12, wherein a composition for manufacturing the hydrogel comprises at least two monomers, the monomer is 2-hydroxyethyl methacrylate, methacrylic acid, glycerol monomethacrylate or N-vinyl-2-pyrrolidinone.
14. The contact lens product of claim 1, wherein the contact lens comprises: a central region; and at least one annular region surrounding the central region, wherein a diopter of the annular region is different from a diopter of the central region.
15. The contact lens product of claim 14, wherein the annular region is a first annular region, the diopter of the central region of the contact lens is PowC, a maximum diopter of the first annular region of the contact lens is PowP1, and the following condition is satisfied:
|PowC−PowP1|≦12 D.
16. The contact lens product of claim 14, wherein a diameter of the central region of the contact lens is DiC, and the following condition is satisfied:
4 mm≦DiC≦10 mm.
17. The contact lens product of claim 14, wherein the annular region is a first annular region, an outer diameter of the first annular region of the contact lens is DiP1, and the following condition is satisfied:
6 mm≦DiP1≦17 mm.
18. The contact lens product of claim 14, wherein the annular region is a first annular region, a diameter of the central region of the contact lens is DiC, an outer diameter of the first annular region of the contact lens is DiP1, and the following condition is satisfied:
0.15≦DiC/DiP1<1.
19. The contact lens product of claim 14, wherein a number of the annular regions of the contact lens is two, the annular regions are a first annular region and a second annular region, the central region, the second annular region and the first annular region are sequentially connected from a center of the contact lens to a periphery of the contact lens, and at least one of the central region, the second annular region and the first annular region is aspheric.
20. The contact lens product of claim 19, wherein a diameter of the central region of the contact lens is DiC, an outer diameter of the second annular region of the contact lens is DiP2, and the following condition is satisfied:
0.2≦DiC/DiP2<1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008] The present disclosure can be more fully understood by reading the following detailed description of the embodiment, with reference made to the accompanying drawings as follows:
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[0029]
DETAILED DESCRIPTION
[0030]
[0031] The buffer solution 120 includes a cycloplegic agent. When a weight percentage concentration of the cycloplegic agent in the buffer solution 120 is ConA, the following condition is satisfied: 0%<ConA≦1%. Therefore, the concentration of the cycloplegic agent is proper, which is favorable to relax the ciliary muscle and reduce the probability of drug side effects. Alternatively, the following condition can be satisfied: 0%<ConA≦0.5%. Alternatively, the following condition can be satisfied: 0%<ConA≦0.25%. Alternatively, the following condition can be satisfied: 0%<ConA≦0.1%. Alternatively, the following condition can be satisfied: 0%<ConA≦0.05%. Alternatively, the following condition can be satisfied: 0%<ConA≦0.01%. The buffer solution 120 can be prepared by providing a basic solution, wherein the basic solution can be a commercially available solution for immersing and preserving contact lenses. Then the cycloplegic agent is added into the basic solution to a predetermined concentration, and chemical reactions do not occur between the basic solution and the cycloplegic agent.
[0032]
[0033] When a visible light absorption rate of the contact lens 110 is Avi, the following condition is satisfied: 0%<Avi≦80%. Therefore, a portion of the visible lights can be absorbed so as to ease the photophobia. Alternatively, the following condition can be satisfied: 5%≦Avi≦70%. Alternatively, the following condition can be satisfied: 5%≦Avi≦60%. Alternatively, the following condition can be satisfied: 5%23 Avi≦50%. Alternatively, the following condition can be satisfied: 10%≦Avi≦50%. Alternatively, the following condition can be satisfied: 15%≦Avi≦45%.
[0034] When a blue light absorption rate of the contact lens 110 is Abl, the following condition is satisfied: 0%<Abl<100%. Therefore, the high-energy blue lights can be absorbed, and the probability that the retina hurt by the blue lights can be reduced. Alternatively, the following condition can be satisfied: 10%≦Abl≦80%. Alternatively, the following condition can be satisfied: 20%≦Abl≦70%. Alternatively, the following condition can be satisfied: 30%≦Abl≦70%. Alternatively, the following condition can be satisfied: 40%≦Abl≦60%. Alternatively, the following condition can be satisfied: 45%≦Abl≦60%.
[0035] When an ultraviolet light absorption rate of the contact lens 110 is Auv, the following condition is satisfied: 0%<Auv<100%. Therefore, the high-energy ultraviolet lights can be absorbed, and the probability that the retina hurt by the ultraviolet lights can be reduced. Alternatively, the following condition can be satisfied: 40%≦Auv<100%. Alternatively, the following condition can be satisfied: 50%≦Auv<100%. Alternatively, the following condition can be satisfied: 60%≦Auv<100%. Alternatively, the following condition can be satisfied: 70%≦Auv<100%. Alternatively, the following condition can be satisfied: 80%≦Auv<100%.
[0036] A composition for manufacturing the contact lens 110 can include at least one light absorbing agent. The light absorbing agent can be a visible light absorbing agent or a short-wavelength light absorbing agent.
[0037] Specifically, the composition for manufacturing the contact lens 110 can include at least one of the visible light absorbing agent. Therefore, the contact lens 110 can absorb visible lights, which can prevent excessive visible lights entering into a wearer's eyes due to the enlarged pupil caused by the cycloplegic agent, and the photophobia can be eased. The visible light absorbing agent can be but is not limited to 1,4-bis[4-(2-methacryloxyethyl)phenylamino]anthraquinone or 1,4-bis[(2-methacryloxyethyl)amino]-9,10-anthraquinone. The aforementioned visible light absorbing agents can be used simultaneously or separately.
[0038] The composition for manufacturing the contact lens 110 can include at least one of the short-wavelength light absorbing agent. The short-wavelength light refers to the light with a wavelength range of 280 nm to 495 nm. Therefore, the contact lens 110 can absorb high-energy blue lights and/or ultraviolet lights, which can prevent excessive blue lights and/or ultraviolet lights entering into the wearer's eyes due to the enlarged pupil caused by the cycloplegic agent, and the probability that the retina hurt by the blue lights and/or ultraviolet lights can be reduced. The short-wavelength light absorbing agent can be but is not limited to 4-(phenyldiazenyl) phenyl methacrylate or reactive yellow 15. Alternatively, the short-wavelength light absorbing agent can be but is not limited to 2-[3-(2H-benzotriazol-2-yl)-4-hydroxyphenyl]ethyl methacrylate, 4-methacryloxy-2-hydroxybenzophenone, 2-phenylethyl acrylate, 2-phenylethyl methacrylate, 2-(2′-hydroxy-5-methacryloxyethylphenyl)-2H-benzotriazole, 2-(4-benzoyl-3-hydroxyphenoxy)ethyl acrylate, 3-(3-(tert-butyl)-4-hydroxy-5-(5-methoxy-2H-benzo[d][1,2,3]triazol-2-yl)phenoxy) propyl methacrylate, 1,3-bis(4-benzoyl-3-hydroxyphenoxy)-2-propyl methacrylate, 1,3-bis(4-benzoyl-3-hydroxyphenoxy)-2-propanyl acrylate or N-(4-hydroxy-3-(5-methoxy-2H-benzo[d][1,2,3]triazol-2-yl)phenyl)methacrylamide. The aforementioned short-wavelength light absorbing agents can be used simultaneously or separately.
[0039] According to the aforementioned contact lens product 100, the contact lens 110 can be made of a silicone hydrogel. Therefore, the oxygen permeability of the contact lens 110 can be enhanced, and the phenomena, such as red eyes, bloodshot eyes and swell, caused by the hypoxia of cornea can be prevented. Accordingly, the long wear comfort can be provided. The silicone hydrogel can be but is not limited to the contact lens material classified as Group V by U.S. FDA (U.S. Food and Drug Administration), such as Balafilcon A, Comfilcon A, Efrofilcon A, Enfilcon A, Galyfilcon A, Lotrafilcon A, Lotrafilcon B, Narafilcon A, Narafilcon B, Senofilcon A, Delefilcon A and Somofilcon A.
[0040] A composition for manufacturing the silicone hydrogel can include at least two monomers. The monomer can be 2-hydroxyethyl methacrylate, 3-methacryloyloxypropyltris(trimethylsilyloxy)silane, N-vinyl-2-pyrrolidinone, N,N-dimethyl acrylamide, methacrylic acid, methyl methacrylate, 3-(3-methacryloxy-2-hydroxypropoxy)propylbis(trimethylsiloxy)methylsilane or (3-acryloxy-2-hydroxypropoxypropyl)terminated polydimethylsiloxane.
[0041] The composition for manufacturing the silicone hydrogel can include 2-hydroxyethyl methacrylate, 3-methacryloyloxypropyltris(trimethylsilyloxy)silane, N-vinyl-2-pyrrolidinone, N,N-dimethyl acrylamide, methacrylic acid, 3-(3-methacryloxy-2-hydroxypropoxy)propylbis(trimethylsiloxy)methylsilane, ethylene glycol dimethacrylate, 2-hydroxy-2-methyl-propiophenone and isopropyl alcohol.
[0042] Preferably, a weight percentage concentration of the ingredients of the composition for manufacturing the silicone hydrogel can be as follows. The weight percentage concentration of the 2-hydroxyethyl methacrylate is 0.05% to 25%, the weight percentage concentration of the 3-methacryloyloxypropyltris(trimethylsilyloxy)silane is 0.1% to 40%, the weight percentage concentration of the N-vinyl-2-pyrrolidinone is 0.1% to 35%, the weight percentage concentration of the N,N-dimethyl acrylamide is 0.1% to 40%, the weight percentage concentration of the methacrylic acid is 0.01% to 5%, the weight percentage concentration of the 3-(3-methacryloxy-2-hydroxypropoxy)propylbis(trimethylsiloxy)methylsilane is 0.1% to 30%, the weight percentage concentration of the ethylene glycol dimethacrylate is 0.01% to 5%, the weight percentage concentration of the 2-hydroxy-2-methyl-propiophenone is 0.01% to 5%, and the weight percentage concentration of the isopropyl alcohol is 0.1% to 30%.
[0043] More preferably, the weight percentage concentration of the ingredients of the composition for manufacturing the silicone hydrogel can be as follows. The weight percentage concentration of the 2-hydroxyethyl methacrylate is 0.1% to 10%, the weight percentage concentration of the 3-methacryloyloxypropyltris(trimethylsilyloxy)silane is 1% to 40%, the weight percentage concentration of the N-vinyl-2-pyrrolidinone is 1% to 35%, the weight percentage concentration of the N,N-dimethyl acrylamide is 1% to 20%, the weight percentage concentration of the methacrylic acid is 0.1% to 2%, the weight percentage concentration of the 3-(3-methacryloxy-2-hyd roxypropoxy)propylbis(trim ethylsi loxy)methylsi lane is 1% to 30%, the weight percentage concentration of the ethylene glycol dimethacrylate is 0.1% to 2%, the weight percentage concentration of the 2-hydroxy-2-methyl-propiophenone is 0.1% to 2%, and the weight percentage concentration of the isopropyl alcohol is 1% to 20%.
[0044] The composition for manufacturing the silicone hydrogel can include 2-hydroxyethyl methacrylate, 3-methacryloyloxypropyltris(trimethylsilyloxy)silane, N-vinyl-2-pyrrolidinone, N,N-dimethyl acrylamide, (3-acryloxy-2-hydroxypropoxypropyl)terminated polydimethylsiloxane, ethylene glycol dimethacrylate, 2-hydroxy-2-methyl-propiophenone and 1-hexanol.
[0045] Preferably, a weight percentage concentration of the ingredients of the composition for manufacturing the silicone hydrogel can be as follows. The weight percentage concentration of the 2-hydroxyethyl methacrylate is 0.05% to 25%, the weight percentage concentration of the 3-methacryloyloxypropyltris(trimethylsilyloxy)silane is 0.1% to 40%, the weight percentage concentration of the N-vinyl-2-pyrrolidinone is 0.1% to 35%, the to weight percentage concentration of the N,N-dimethyl acrylamide is 0.1% to 40%, the weight percentage concentration of the (3-acryloxy-2-hydroxypropoxypropyl)terminated polydimethylsiloxane is 0.1% to 40%, the weight percentage concentration of the ethylene glycol dimethacrylate is 0.01% to 5%, the weight percentage concentration of the 2-hydroxy-2-methyl-propiophenone is 0.01% to 5%, and the weight percentage concentration of the 1-hexanol is 0.1% to 30%.
[0046] More preferably, the weight percentage concentration of the ingredients of the composition for manufacturing the silicone hydrogel can be as follows. The weight percentage concentration of the 2-hydroxyethyl methacrylate is 0.1% to 10%, the weight percentage concentration of the 3-methacryloyloxypropyltris(trimethylsilyloxy)silane is 1% to 40%, the weight percentage concentration of the N-vinyl-2-pyrrolidinone is 1% to 35%, the weight percentage concentration of the N,N-dimethyl acrylamide is 1% to 20%, the weight percentage concentration of the (3-acryloxy-2-hydroxypropoxypropyl)terminated polydimethylsiloxane is 1% to 40%, the weight percentage concentration of the ethylene glycol dimethacrylate is 0.1% to 2%, the weight percentage concentration of the 2-hydroxy-2-methyl-propiophenone is 0.1% to 2%, and the weight percentage concentration of the 1-hexanol is 1% to 30%.
[0047] The composition for manufacturing the silicone hydrogel can include 2-hydroxyethyl methacrylate, 3-methacryloyloxypropyltris(trimethylsilyloxy)silane, N-vinyl-2-pyrrolidinone, N,N-dimethyl acrylamide, methyl methacrylate, polysiloxane macromer, 2-hydroxy-2-methyl-propiophenone and ethanol.
[0048] Preferably, a weight percentage concentration of the ingredients of the composition for manufacturing the silicone hydrogel can be as follows. The weight percentage concentration of the 2-hydroxyethyl methacrylate is 0.05% to 25%, the weight percentage concentration of the 3-methacryloyloxypropyltris(trimethylsilyloxy)silane is 0.1% to 40%, the weight percentage concentration of the N-vinyl-2-pyrrolidinone is 0.1% to 35%, the weight percentage concentration of the N,N-dimethyl acrylamide is 0.1% to 40%, the weight percentage concentration of the methyl methacrylate is 0.1% to 20%, the weight percentage concentration of the polysiloxane macromer is 0.1% to 40%, the weight percentage concentration of the 2-hydroxy-2-methyl-propiophenone is 0.01% to 5%, and the weight percentage concentration of the ethanol is 0.1% to 30%.
[0049] More preferably, the weight percentage concentration of the ingredients of the composition for manufacturing the silicone hydrogel can be as follows. The weight percentage concentration of the 2-hydroxyethyl methacrylate is 0.1% to 10%, the weight percentage concentration of the 3-methacryloyloxypropyltris(trimethylsilyloxy)silane is 1% to 40%, the weight percentage concentration of the N-vinyl-2-pyrrolidinone is 1% to 35%, the weight percentage concentration of the N,N-dimethyl acrylamide is 1% to 20%, the weight percentage concentration of the methyl methacrylate is 1% to 10%, the weight percentage concentration of the polysiloxane macromer is 1% to 40%, the weight percentage concentration of the 2-hydroxy-2-methyl-propiophenone is 0.1% to 2%, and the weight percentage concentration of the ethanol is 1% to 20%.
[0050] Each of the aforementioned compositions for manufacturing the silicone hydrogel can further include a visible light absorbing agent. Preferably, the weight percentage concentration of the visible light absorbing agent of the composition for manufacturing the silicone hydrogel is 0.01% to 0.5%. More preferably, the weight percentage concentration of the visible light absorbing agent of the composition for manufacturing the silicone hydrogel is 0.01% to 0.25%. Each of the aforementioned compositions for manufacturing the silicone hydrogel can further include a short-wavelength light absorbing agent. Preferably, the weight percentage concentration of the short-wavelength light absorbing agent of the composition for manufacturing the silicone hydrogel is 0.01% to 10%. More preferably, the weight percentage concentration of the short-wavelength light absorbing agent of the composition for manufacturing the silicone hydrogel is 0.1% to 5%. Furthermore, the composition for manufacturing the silicone hydrogel can include one of the visible light absorbing agent and the short-wavelength light absorbing agent, or can include both of the visible light absorbing agent and the short-wavelength light absorbing agent.
[0051] By adjusting the ratio of the ingredients of the composition for manufacturing the silicone hydrogel, an oxygen permeability and a hardness of the contact lens 110 can be effectively enhanced. Furthermore, the composition for manufacturing the silicone hydrogel can selectively include other ingredients according to practical needs.
[0052] According to the aforementioned contact lens product 100, the contact lens 110 can be made of a hydrogel. Therefore, the moisture, smoothness and softness of the contact lens 110 can be maintained, and is capable of long wear. Furthermore, the foreign body sensation can be avoided when wearing the contact lens 110. The hydrogel can be but is not limited to the contact lens material classified as Group I by U.S. FDA, i.e., nonionic polymers having a low water content (less than 50 wt %), such as Helfilcon A&B, Hioxifilcon B, Mafilcon, Polymacon, Tefilcon and Tetrafilcon A. Alternatively, the hydrogel can be but is not limited to the contact lens material classified as Group II by U.S. FDA, i.e., nonionic polymers having a high water content (greater than 50 wt %), such as Acofilcon A, Alfafilcon A, Hilafilcon B, Hioxifilcon A, Hioxifilcon B, Hioxifilcon D, Nelfilcon A, Nesofilcon A, Omafilcon A and Samfilcon A. Alternatively, the hydrogel can be but is not limited to the contact lens material classified as Group III by U.S. FDA, i.e., ionic polymers having a low water content (less than 50 wt %), such as Deltafilcon A. Alternatively, the hydrogel can be but is not limited to the contact lens material classified as Group IV by U.S. FDA, i.e., ionic polymers having a high water content (greater than 50 wt %), such as Etafilcon A, Focofilcon A, Methafilcon A, Methafilcon B, Ocufilcon A, Ocufilcon B, Ocufilcon C, Ocufilcon D, Ocufilcon E, Phemfilcon A and Vifilcon A.
[0053] A composition for manufacturing the hydrogel can include at least two monomers. The monomer can be 2-hydroxyethyl methacrylate, methacrylic acid, glycerol monomethacrylate or N-vinyl-2-pyrrolidinone.
[0054] The composition for manufacturing the hydrogel can include 2-hydroxyethyl methacrylate, methacrylic acid, ethylene glycol dimethacrylate, 1,1,1-trimethylol propane trimethacrylate, 2-hydroxy-2-methyl-propiophenone and glycerol.
[0055] Preferably, a weight percentage concentration of the ingredients of the composition for manufacturing the hydrogel can be as follows. The weight percentage concentration of the 2-hydroxyethyl methacrylate is 10% to 96%, the weight percentage concentration of the methacrylic acid is 0.01% to 5%, the weight percentage concentration of the ethylene glycol dimethacrylate is 0.01% to 5%, the weight percentage concentration of the 1,1,1-trimethylol propane trimethacrylate is 0.01% to 5%, the weight percentage concentration of the 2-hydroxy-2-methyl-propiophenone is 0.01% to 5%, and the weight percentage concentration of the glycerol is 0.1% to 30%.
[0056] More preferably, the weight percentage concentration of the ingredients of the composition for manufacturing the hydrogel can be as follows. The weight percentage concentration of the 2-hydroxyethyl methacrylate is 40% to 96%, the weight percentage concentration of the methacrylic acid is 0.1% to 2%, the weight percentage concentration of the ethylene glycol dimethacrylate is 0.1% to 2%, the weight percentage concentration of the 1,1,1-trimethylol propane trimethacrylate is 0.1% to 2%, the weight percentage concentration of the 2-hydroxy-2-methyl-propiophenone is 0.1% to 2%, and the weight percentage concentration of the glycerol is 1% to 20%.
[0057] The composition for manufacturing the hydrogel can include 2-hydroxyethyl methacrylate, glycerol monomethacrylate, ethylene glycol dimethacrylate, 1,1,1-trimethylol propane trimethacrylate, 2-hydroxy-2-methyl-propiophenone and glycerol.
[0058] Preferably, a weight percentage concentration of the ingredients of the composition for manufacturing the hydrogel can be as follows. The weight percentage concentration of the 2-hydroxyethyl methacrylate is 10% to 94.85%, the weight percentage concentration of the glycerol monomethacrylate is 5% to 60%, the weight percentage concentration of the ethylene glycol dimethacrylate is 0.01% to 5%, the weight percentage concentration of the 1,1,1-trimethylol propane trimethacrylate is 0.01% to 5%, the weight percentage concentration of the 2-hydroxy-2-methyl-propiophenone is 0.01% to 5%, and the weight percentage concentration of the glycerol is 0.1% to 30%.
[0059] More preferably, the weight percentage concentration of the ingredients of the composition for manufacturing the hydrogel can be as follows. The weight percentage concentration of the 2-hydroxyethyl methacrylate is 40% to 79.4%, the weight percentage concentration of the glycerol monomethacrylate is 20% to 50%, the weight percentage concentration of the ethylene glycol dimethacrylate is 0.1% to 2%, the weight percentage concentration of the 1,1,1-trimethylol propane trimethacrylate is 0.1% to 2%, the weight percentage concentration of the 2-hydroxy-2-methyl-propiophenone is 0.1% to 2%, and the weight percentage concentration of the glycerol is 1% to 20%.
[0060] The composition for manufacturing the hydrogel can include 2-hydroxyethyl methacrylate, N-vinyl-2-pyrrolidinone, ethylene glycol dimethacrylate, 2-hydroxy-2-methyl-propiophenone and glycerol.
[0061] Preferably, a weight percentage concentration of the ingredients of the composition for manufacturing the hydrogel can be as follows. The weight percentage concentration of the 2-hydroxyethyl methacrylate is 10% to 96%, the weight percentage concentration of the N-vinyl-2-pyrrolidinone is 0.1% to 25%, the weight percentage concentration of the ethylene glycol dimethacrylate is 0.01% to 5%, the weight percentage concentration of the 2-hydroxy-2-methyl-propiophenone is 0.01% to 5%, and the weight percentage concentration of the glycerol is 0.1% to 30%.
[0062] More preferably, the weight percentage concentration of the ingredients of the composition for manufacturing the hydrogel can be as follows. The weight percentage concentration of the 2-hydroxyethyl methacrylate is 40% to 96%, the weight percentage concentration of the N-vinyl-2-pyrrolidinone is 0.1% to 10%, the weight percentage concentration of the ethylene glycol dimethacrylate is 0.1% to 2%, the weight percentage concentration of the 2-hydroxy-2-methyl-propiophenone is 0.1% to 2%, and the weight percentage concentration of the glycerol is 1% to 20%.
[0063] Each of the aforementioned compositions for manufacturing the hydrogel can further include a visible light absorbing agent. Preferably, the weight percentage concentration of the visible light absorbing agent of the composition for manufacturing the hydrogel is 0.01% to 0.5%. More preferably, the weight percentage concentration of the visible light absorbing agent of the composition for manufacturing the hydrogel is 0.01% to 0.25%. Each of the aforementioned compositions for manufacturing the hydrogel can further include a short-wavelength light absorbing agent. Preferably, the weight percentage concentration of the short-wavelength light absorbing agent of the composition for manufacturing the hydrogel is 0.01% to 10%. More preferably, the weight percentage concentration of the short-wavelength light absorbing agent of the composition for manufacturing the hydrogel is 0.1% to 5%. Furthermore, the composition for manufacturing the hydrogel can include one of the visible light absorbing agent and the short-wavelength light absorbing agent, or can include both of the visible light absorbing agent and the short-wavelength light absorbing agent.
[0064] By adjusting the ratio of the ingredients of the composition for manufacturing the hydrogel, a water content and a softness of the contact lens 110 can be effectively enhanced. Furthermore, the composition for manufacturing the hydrogel can selectively include other ingredients according to practical needs. The monomers used in the composition for manufacturing the hydrogel and the monomers used in the composition for silicone hydrogel, such as 2-hydroxyethyl methacrylate, methacrylic acid, glycerol monomethacrylate, N-vinyl-2-pyrrolidinone, 3-methacryloyloxypropyltris(trimethylsilyloxy)silane, N,N-dimethyl acrylamide, 3-(3-methacryloxy-2-hydroxypropoxy)propylbis(trimethylsiloxy)methylsilane, (3-acryloxy-2-hydroxypropoxypropyl)terminated polydimethylsiloxane and methyl methacrylate can be interchanged according to practical needs.
[0065]
[0066] At least one of the central region 211 and the first annular region 212 of the contact lens 210 is aspheric. Therefore, it is favorable to design the first annular region 212 with a gradient diopter.
[0067] When a diameter of the central region 211 of the contact lens 210 is DiC, the following condition can be satisfied: 4 mm≦DiC≦10 mm. Therefore, the diameter can be flexibly adjusted according to the pupil size of different physiological states, so that the accuracy for correcting myopia provided by the central region 211 can be enhanced, and the scene can be completely and clearly focused on retina. Preferably, the following condition can be satisfied: 5 mm≦DiC≦9 mm.
[0068] When an outer diameter of the first annular region 212 of the contact lens 210 is DiP1, and the following condition can be satisfied: 6 mm≦DiP1≦17 mm. Therefore, the outer diameter can be flexibly adjusted according to the size of palpebral fissure, so that a proper comfort and fitness of the contact lens 210 can be provided, and the wearing stability of the contact lens 210 can be enhanced. Preferably, the following condition can be satisfied: 7 mm—DiP1≦15 mm.
[0069] When the diameter of the central region 211 of the contact lens 210 is DiC, and the outer diameter of the first annular region 212 of the contact lens 210 is DiP1, the following condition can be satisfied: 0.15≦DiC/DiP1<1. Therefore, the value of DiC/DiP1 is proper, which is favorable to design the contact lens 210 according to the physiological state of individual eyeball. Accordingly, it is favorable to correct myopia.
[0070] When the diopter of the central region 211 of the contact lens 210 is PowC, the following condition can be satisfied: −6.00 D≦PowC≦−0.25 D. Therefore, a proper correction for myopia can be provided according to the need of users. Accordingly, a clear image can be provided.
[0071] When a maximum diopter of the first annular region 212 of the contact lens 210 is PowP1, the following condition can be satisfied: −5.50 D≦PowP1≦−0.50 D. Therefore, the maximal diopter of the first annular region 212 can be properly designed, which is favorable to correct myopia.
[0072] When the diopter of the central region 211 of the contact lens 210 is PowC, and the maximum diopter of the first annular region 212 of the contact lens 210 is PowP1, the following condition can be satisfied: |PowC−PowP1|≦12 D. Therefore, it is favorable to correct myopia. Furthermore, the increase degree of the diopter of the first annular region 212 can be moderated, so that the discomfort resulted from the excessive increase degree of the diopter can be avoided. Alternatively, the following condition can be satisfied: |PowC−PowP|≦10 D. Alternatively, the following condition can be satisfied: |PowC−PowP|≦5 D. Alternatively, the following condition can be satisfied: |PowC−PowP1|≦3 D. Alternatively, the following condition can be satisfied: −PowC−PowP1|≦2 D. Alternatively, the following condition can be satisfied: |PowC−PowP1|≦1.5 D. Alternatively, the following condition can be satisfied: |PowC−PowP1|≦1 D. Alternatively, the following condition can be satisfied: −PowC−PowP1|≦0.5 D. Alternatively, the following condition can be satisfied: |PowC−PowP1|≦0.25 D.
[0073] The other properties of the contact lens 210 can be the same as that of the contact lens 110, and will not be repeated herein.
[0074]
[0075] At least one of the central region 311, the first annular region 312 and the second annular region 313 is aspheric. Therefore, it is favorable to design the first annular region 312 and/or the second annular region 313 with a gradient diopter.
[0076] When the outer diameter of the second annular region 313 of the contact lens 310 is DiP2, the following condition can be satisfied: 5 mm≦DiP2≦13 mm. Therefore, the increase degree of the diopter can be moderated. Preferably, the following condition can be satisfied: 6 mm≦DiP2≦12 mm.
[0077] When the diameter of the central region 311 of the contact lens 310 is DiC, the outer diameter of the second annular region 313 of the contact lens 310 is DiP2, the following condition can be satisfied: 0.2≦DiC/DiP2<1. Therefore, the increase degree of the diopter of the second annular region 313 can be moderated, so that the discomfort resulted from the excessive increase degree of the diopter can be avoided.
[0078] The other properties of the contact lens 310 can be the same as that of the contact lens 110 or the contact lens 210, and will not be repeated herein.
[0079]
[0080] As shown in
1ST EXAMPLE
[0081] In the 1st example, a contact lens product (not shown) includes a contact lens and a buffer solution. The contact lens is immersed in the buffer solution, and the buffer solution includes a cycloplegic agent. The contact lens includes a central region and a first annular region. The first annular region concentrically surrounds the central region. A diopter of the first annular region is different from a diopter of the central region. The schematic view of the contact lens product of the 1st example can refer to
[0082] In the contact lens product according to the 1st example, when a weight percentage concentration of the cycloplegic agent in the buffer solution is ConA, the following condition is satisfied: ConA=1.0%.
[0083] In the contact lens product according to the 1st example, a diameter of the central region of the contact lens is DiC, an outer diameter of the first annular region of the contact lens is DiP1, the diopter of the central region of the contact lens is PowC, a maximal diopter of the first annular region of the contact lens is PowP1, and the value of DiC, DiP1, DiC/DiP1, PowC, PowP1 and |PowC−PowP1| of the 1st example are listed in Table 1.
TABLE-US-00001 TABLE 1 1st example DiC (mm) 5.00 DiP1 (mm) 13.00 DiC/DiP1 0.38 PowC (D) −0.25 PowP1 (D) 0.25 |PowC − PowP1| (D) 0.50
[0084] Please refer to Table 2 and
TABLE-US-00002 TABLE 2 1st example radius (mm) diopter (D) −6.50 0.25 −6.00 0.19 −5.50 0.13 −5.00 0.06 −4.50 0.00 −4.00 −0.06 −3.50 −0.13 −3.00 −0.19 −2.50 −0.25 −2.00 −0.25 −1.50 −0.25 −1.00 −0.25 −0.50 −0.25 0.00 −0.25 0.50 −0.25 1.00 −0.25 1.50 −0.25 2.00 −0.25 2.50 −0.25 3.00 −0.19 3.50 −0.13 4.00 −0.06 4.50 0.00 5.00 0.06 5.50 0.13 6.00 0.19 6.50 0.25
[0085] In the 1st example, the contact lens is made of hydrogel. A composition for manufacturing the hydrogel of the 1st example is listed in Table 3A.
TABLE-US-00003 TABLE 3A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 82 monomer methacrylic acid 2.2 crosslinking ethylene glycol dimethacrylate 0.4 agent crosslinking 1,1,1-trimethylol propane 0.2 agent trimethacrylate initiator 2-hydroxy-2-methyl-propiophenone 0.5 diluent glycerol 13.25 visible light 1,4-bis[4-(2-methacryloxyethyl) 0.25 absorbing agent phenylamino]anthraquinone short-wave- 2-(2′-hydroxy-5′- 1.2 length light methacryloxyethylphenyl)- absorbing agent 2H-benzotriazole
[0086] In the contact lens product according to the 1st example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 1st example are listed in Table 3B.
TABLE-US-00004 TABLE 3B 1st example Avi (%) Abl (%) Auv(%) 17.40 10.50 72.70
[0087] The visible light (with a wavelength ranging from 380 nm to 700 nm) absorption rate can be calculated by the following formula: (1—an average transmittance of the wavelength ranging from 380 nm to 700 nm)×100%. The blue light (with a wavelength ranging from 380 nm to 495 nm) absorption rate can be calculated by the following formula: (1—an average transmittance of the wavelength ranging from 380 nm to 495 nm)×100%. The ultraviolet light (with a wavelength ranging from 280 nm to 380 nm) absorption rate can be calculated by the following formula: (1—an average transmittance of the wavelength ranging from 280 nm to 380 nm)×100%. The aforementioned formulas can be applied to calculate the visible light absorption rate, the blue light absorption rate and the ultraviolet light absorption rate of the following examples and comparative examples, and will not be repeated hereinafter.
1ST COMPARATIVE EXAMPLE
[0088] The main difference between the 1st comparative example and the 1st example is the 1st comparative example in lack of the visible light absorbing agent and the short-wavelength light absorbing agent. In the 1st comparative example, the contact lens is made of hydrogel. A composition for manufacturing the hydrogel of the 1st comparative example is listed in Table 4A.
TABLE-US-00005 TABLE 4A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 83.45 monomer methacrylic acid 2.2 crosslinking ethylene glycol dimethacrylate 0.4 agent crosslinking 1,1,1-trimethylol propane 0.2 agent trimethacrylate initiator 2-hydroxy-2-methyl-propiophenone 0.5 diluent glycerol 13.25
[0089] In the contact lens product according to the 1st comparative example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 1st comparative example are listed in Table 4B.
TABLE-US-00006 TABLE 4B 1st comparative example Avi (%) Abl (%) Auv(%) 4.90 2.35 9.80
[0090] The other properties of the contact lens of the 1st comparative example are the same as that of the 1st example, and will not be repeated herein.
2ND EXAMPLE
[0091] In the 2nd example, a contact lens product (not shown) includes a is contact lens and a buffer solution. The contact lens is immersed in the buffer solution, and the buffer solution includes a cycloplegic agent. The contact lens includes a central region, a first annular region and a second annular region. The central region, the second annular region and the first annular region are sequentially connected from a center of the contact lens to a periphery of the contact lens and are concentric. At least one of the central region, the second annular region and the first annular region is aspheric. The schematic view of the contact lens product of the 2nd example can refer to
[0092] In the contact lens product according to the 2nd example, when a weight percentage concentration of the cycloplegic agent in the buffer solution is ConA, the following condition is satisfied: ConA=0.75%.
[0093] In the contact lens product according to the 2nd example, a diameter of the central region of the contact lens is DiC, an outer diameter of the first annular region of the contact lens is DiP1, an outer diameter of the second annular region of the contact lens is DiP2, a diopter of the central region of the contact lens is PowC, a maximal diopter of the first annular region of the contact lens is PowP1, a maximal diopter of the second annular region of the contact lens is PowP2, and the value of DiC, DiP1, DiP2, DiC/DiP1, DiC/DiP2, PowC, PowP1, PowP2 and |PowC−PowP1| of the 2nd example are listed in Table 5.
TABLE-US-00007 TABLE 5 2nd example DiC (mm) 5.00 DiP1 (mm) 16.00 DiP2 (mm) 13.00 DiC/DiP1 0.31 DiC/DiP2 0.38 PowC (D) −0.50 PowP1 (D) 0.50 PowP2 (D) 0.50 |PowC − PowP1| (D) 1.00
[0094] Please refer to Table 6 and
TABLE-US-00008 TABLE 6 2nd example radius (mm) diopter (D) −8.00 0.50 −7.50 0.50 −7.00 0.50 −6.50 0.50 −6.00 0.38 −5.50 0.25 −5.00 0.13 −4.50 0.00 −4.00 −0.13 −3.50 −0.25 −3.00 −0.38 −2.50 −0.50 −2.00 −0.50 −1.50 −0.50 −1.00 −0.50 −0.50 −0.50 0.00 −0.50 0.50 −0.50 1.00 −0.50 1.50 −0.50 2.00 −0.50 2.50 −0.50 3.00 −0.38 3.50 −0.25 4.00 −0.13 4.50 0.00 5.00 0.13 5.50 0.25 6.00 0.38 6.50 0.50 7.00 0.50 7.50 0.50 8.00 0.50
[0095] In the 2nd example, the contact lens is made of hydrogel. A composition for manufacturing the hydrogel of the 2nd example is listed in Table 7A.
TABLE-US-00009 TABLE 7A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 44.8 monomer glycerol monomethacrylate 42 crosslinking ethylene glycol dimethacrylate 0.6 agent crosslinking 1,1,1-trimethylol propane 0.2 agent trimethacrylate initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent glycerol 10.35 visible light 1,4-bis[(2-methacryloxyethyl)amino]- 0.25 absorbing agent 9,10-anthraquinone short-wave- 2-(2′-hydroxy-5′- 1.2 length light methacryloxyethylphenyl)-2H- absorbing agent benzotriazole
[0096] In the contact lens product according to the 2nd example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 2nd example are listed in Table 7B.
TABLE-US-00010 TABLE 7B 2nd example Avi (%) Abl (%) Auv (%) 25.50 16.50 75.90
2ND COMPARATIVE EXAMPLE
[0097] The main difference between the 2nd comparative example and the 2nd example is the 2nd comparative example in lack of the visible light absorbing agent and the short-wavelength light absorbing agent. In the 2nd comparative example, the contact lens is made of hydrogel. A composition for manufacturing the hydrogel of the 2nd comparative example is listed in Table 8A.
TABLE-US-00011 TABLE 8A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 46.25 monomer glycerol monomethacrylate 42 crosslinking ethylene glycol dimethacrylate 0.6 agent crosslinking 1,1,1-trimethylol propane 0.2 agent trimethacrylate initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent glycerol 10.35
[0098] In the contact lens product according to the 2nd comparative example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 2nd comparative example are listed in Table 8B.
TABLE-US-00012 TABLE 8B 2nd comparative example Avi (%) Abl (%) Auv(%) 4.25 2.50 8.85
[0099] The other properties of the contact lens of the 2nd comparative example are the same as that of the 2nd example, and will not be repeated herein.
3RD EXAMPLE
[0100] In the 3rd example, a contact lens product (not shown) includes a contact lens and a buffer solution. The contact lens is immersed in the buffer solution, and the buffer solution includes a cycloplegic agent. The contact lens includes a central region, a first annular region and a second annular region. The central region, the second annular region and the first annular region are sequentially connected from a center of the contact lens to a periphery of the contact lens and are concentric. At least one of the central region, the second annular region and the first annular region is aspheric. The schematic view of the contact lens product of the 3rd example can refer to
[0101] In the contact lens product according to the 3rd example, when a weight percentage concentration of the cycloplegic agent in the buffer solution is ConA, the following condition is satisfied: ConA=0.35%.
[0102] In the contact lens product according to the 3rd example, a diameter of the central region of the contact lens is DiC, an outer diameter of the first annular region of the contact lens is DiP1, an outer diameter of the second annular region of the contact lens is DiP2, a diopter of the central region of the contact lens is PowC, a maximal diopter of the first annular region of the contact lens is PowP1, a maximal diopter of the second annular region of the contact lens is PowP2, and the value of DiC, DiP1, DiP2, DiC/DiP1, DiC/DiP2, PowC, PowP1, PowP2 and |PowC−PowP1| of the 3rd example are listed in Table 9.
TABLE-US-00013 TABLE 9 3rd example DiC (mm) 4.00 DiP1 (mm) 15.00 DiP2 (mm) 6.00 DiC/DiP1 0.27 DiC/DiP2 0.67 PowC (D) −1.00 PowP1 (D) 0.25 PowP2 (D) −0.50 |PowC − PowP1| (D) 1.25
[0103] Please refer to Table 10 and
TABLE-US-00014 TABLE 10 3rd example radius (mm) radius (mm) −7.50 0.25 −7.00 0.17 −6.50 0.08 −6.00 0.00 −5.50 −0.08 −5.00 −0.17 −4.50 −0.25 −4.00 −0.33 −3.50 −0.42 −3.00 −0.50 −2.50 −0.75 −2.00 −1.00 −1.50 −1.00 −1.00 −1.00 −0.50 −1.00 0.00 −1.00 0.50 −1.00 1.00 −1.00 1.50 −1.00 2.00 −1.00 2.50 −0.75 3.00 −0.50 3.50 −0.42 4.00 −0.33 4.50 −0.25 5.00 −0.17 5.50 −0.08 6.00 0.00 6.50 0.08 7.00 0.17 7.50 0.25
[0104] In the 3rd example, the contact lens is made of hydrogel. A composition for manufacturing the hydrogel of the 3rd example is listed in Table 11A.
TABLE-US-00015 TABLE 11A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 90.85 monomer N-vinyl-2-pyrrolidinone 0.5 crosslinking ethylene glycol dimethacrylate 0.6 agent initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent glycerol 6.2 visible light 1,4-bis[(2-methacryloxyethyl)amino]- 0.25 absorbing agent 9,10-anthraquinone short-wave- 2-(2′-hydroxy-5′- 1.00 length light methacryloxyethylphenyl)-2H- absorbing agent benzotriazole
[0105] In the contact lens product according to the 3rd example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi. Abl and Auv of the 3rd example are listed in Table 11B.
TABLE-US-00016 TABLE 11B 3rd example Avi (%) Abl (%) Auv (%) 25.50 16.50 75.90
3RD COMPARATIVE EXAMPLE
[0106] The main difference between the 3rd comparative example and the 3rd example is the 3rd comparative example in lack of the visible light absorbing agent and the short-wavelength light absorbing agent. In the 3rd comparative example, the contact lens is made of hydrogel. A composition for manufacturing the hydrogel of the 3rd comparative example is listed in Table 12A.
TABLE-US-00017 TABLE 12A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 92.10 monomer N-vinyl-2-pyrrolidinone 0.5 crosslinking ethylene glycol dimethacrylate 0.6 agent initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent glycerol 6.2
[0107] In the contact lens product according to the 3rd comparative example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 3rd comparative example are listed in Table 12B.
TABLE-US-00018 TABLE 12B 3rd comparative example Avi (%) Abl (%) Auv(%) 4.50 3.00 5.50
4TH EXAMPLE
[0108] In the 4th example, a contact lens product (not shown) includes a contact lens and a buffer solution. The contact lens is immersed in the buffer solution, and the buffer solution includes a cycloplegic agent. The contact lens includes a central region and a first annular region. The first annular region concentrically surrounds the central region. A diopter of the first annular region is different from a diopter of the central region. The schematic view of the contact lens product of the 4th example can refer to
[0109] In the contact lens product according to the 4th example, when a weight percentage concentration of the cycloplegic agent in the buffer solution is ConA, the following condition is satisfied: ConA=0.5%.
[0110] In the contact lens product according to the 4th example, a diameter of the central region of the contact lens is DiC, an outer diameter of the first annular region of the contact lens is DiP1, the diopter of the central region of the contact lens is PowC, a maximal diopter of the first annular region of the contact lens is PowP1, and the value of DiC, DiP1, DiC/DiP1, PowC, PowP1 and |PowC|PowP1| of the 4th example are listed in Table 13.
TABLE-US-00019 TABLE 13 4th example DiC (mm) 7.00 DiP1 (mm) 14.00 DiC/DiP1 0.50 PowC (D) −1.50 PowP1 (D) −1.00 |PowC − PowP1| (D) 0.50
[0111] Please refer to Table 14 and
TABLE-US-00020 TABLE 14 4th example radius (mm) diopter (D) −7.00 −1.00 −6.50 −1.07 −6.00 −1.14 −5.50 −1.21 −5.00 −1.29 −4.50 −1.36 −4.00 −1.43 −3.50 −1.50 −3.00 −1.50 −2.50 −1.50 −2.00 −1.50 −1.50 −1.50 −1.00 −1.50 −0.50 −1.50 0.00 −1.50 0.50 −1.50 1.00 −1.50 1.50 −1.50 2.00 −1.50 2.50 −1.50 3.00 −1.50 3.50 −1.50 4.00 −1.43 4.50 −1.36 5.00 −1.29 5.50 −1.21 6.00 −1.14 6.50 −1.07 7.00 −1.00
[0112] In the 4th example, the contact lens is made of hydrogel. A composition for manufacturing the hydrogel of the 4th example is listed in Table 15A.
TABLE-US-00021 TABLE 15A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 82 monomer methacrylic acid 2.2 crosslinking ethylene glycol dimethacrylate 0.4 agent crosslinking 1,1,1-trimethylol propane 0.2 agent trimethacrylate initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent glycerol 13.35 visible light 1,4-bis[4-(2-methacryloxyethyl) 0.25 absorbing agent phenylamino]anthraquinone short-wave- 2-(4-benzoyl-3-hydroxyphenoxy)ethyl 1 length light acrylate absorbing agent
[0113] In the contact lens product according to the 4th example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 4th example are listed in Table 15B.
TABLE-US-00022 TABLE 15B 4th example Avi (%) Abl (%) Auv(%) 17.33 10.53 72.75
4TH COMPARATIVE EXAMPLE
[0114] The main difference between the 4th comparative example and the 4th example is the 4th comparative example in lack of the visible light absorbing agent and the short-wavelength light absorbing agent. In the 4th comparative example, the contact lens is made of hydrogel. A composition for manufacturing the hydrogel of the 4th comparative example is listed in Table 16A.
TABLE-US-00023 TABLE 16A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 83.25 monomer methacrylic acid 2.2 crosslinking ethylene glycol dimethacrylate 0.4 agent crosslinking 1,1,1-trimethylol propane 0.2 agent trimethacrylate initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent glycerol 13.35
[0115] In the contact lens product according to the 4th comparative example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 4th comparative example are listed in Table 16B.
TABLE-US-00024 TABLE 16B 4th comparative example Avi (%) Abl (%) Auv (%) 7.71 7.96 8.64
5TH EXAMPLE
[0116] In the 5th example, a contact lens product (not shown) includes a contact lens and a buffer solution. The contact lens is immersed in the buffer solution, and the buffer solution includes a cycloplegic agent. The contact lens includes a central region, a first annular region and a second annular region. The central region, the second annular region and the first annular region are sequentially connected from a center of the contact lens to a periphery of the contact lens and are concentric. At least one of the central region, the second annular region and the first annular region is aspheric. The schematic view of the contact lens product of the 5th example can refer to
[0117] In the contact lens product according to the 5th example, when a weight percentage concentration of the cycloplegic agent in the buffer solution is ConA, the following condition is satisfied: ConA=0.65%.
[0118] In the contact lens product according to the 5th example, a diameter of the central region of the contact lens is DiC, an outer diameter of the first annular region of the contact lens is DiP1, an outer diameter of the second annular region of the contact lens is DiP2, a diopter of the central region of the contact lens is PowC, a maximal diopter of the first annular region of the contact lens is PowP1, a maximal diopter of the second annular region of the contact lens is PowP2, and the value of DiC, DiP1, DiP2, DiC/DiP1, DiC/DiP2, PowC, PowP1, PowP2 and |PowC−PowP1| of the 5th example are listed in Table 17.
TABLE-US-00025 TABLE 17 5th example DiC (mm) 8.00 DiP1 (mm) 15.00 DiP2 (mm) 11.00 DiC/DiP1 0.53 DiC/DiP2 0.73 PowC (D) −2.00 PowP1 (D) 0 PowP2 (D) 0 |PowC − PowP1| (D) 2.00
[0119] Please refer to Table 18 and
TABLE-US-00026 TABLE 18 5th example radius (mm) radius (mm) −7.50 0.00 −7.00 0.00 −6.50 0.00 −6.00 0.00 −5.50 0.00 −5.00 −0.67 −4.50 −1.33 −4.00 −2.00 −3.50 −2.00 −3.00 −2.00 −2.50 −2.00 −2.00 −2.00 −1.50 −2.00 −1.00 −2.00 −0.50 −2.00 0.00 −2.00 0.50 −2.00 1.00 −2.00 1.50 −2.00 2.00 −2.00 2.50 −2.00 3.00 −2.00 3.50 −2.00 4.00 −2.00 4.50 −1.33 5.00 −0.67 5.50 0.00 6.00 0.00 6.50 0.00 7.00 0.00 7.50 0.00
[0120] In the 5th example, the contact lens is made of hydrogel. A composition for manufacturing the hydrogel of the 5th example is listed in Table 19A.
TABLE-US-00027 TABLE 19A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 45 monomer glycerol monomethacrylate 42 crosslinking ethylene glycol dimethacrylate 0.6 agent crosslinking 1,1,1-trimethylol propane 0.3 agent trimethacrylate initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent glycerol 10.35 visible light 1,4-bis[(2-methacryloxyethyl)amino]- 0.25 absorbing 9,10-anthraquinone agent short-wave- 2-(4-benzoyl-3-hydroxyphenoxy)ethyl 0.9 length light acrylate absorbing agent
[0121] In the contact lens product according to the 5th example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 5th example are listed in Table 19B.
TABLE-US-00028 TABLE 19B 5th example Avi (%) Abl (%) Auv (%) 25.50 16.50 75.90
5TH COMPARATIVE EXAMPLE
[0122] The main difference between the 5th comparative example and the 5th example is the 5th comparative example in lack of the visible light absorbing agent and the short-wavelength light absorbing agent. In the 5th comparative example, the contact lens is made of hydrogel. A composition for manufacturing the hydrogel of the 5th comparative example is listed in Table 20A.
TABLE-US-00029 TABLE 20A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 46.15 monomer glycerol monomethacrylate 42 crosslinking ethylene glycol dimethacrylate 0.6 agent crosslinking 1,1,1-trimethylol propane 0.3 agent trimethacrylate initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent glycerol 10.35
[0123] In the contact lens product according to the 5th comparative example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 5th comparative example are listed in Table 20B.
TABLE-US-00030 TABLE 20B 5th comparative example Avi (%) Abl (%) Auv (%) 5.25 2.25 7.55
6TH EXAMPLE
[0124] In the 6th example, a contact lens product (not shown) includes a contact lens and a buffer solution. The contact lens is immersed in the buffer solution, and the buffer solution includes a cycloplegic agent. The contact lens includes a central region and a first annular region. The first annular region concentrically surrounds the central region. A diopter of the first annular region is different from a diopter of the central region. The schematic view of the contact lens product of the 6th example can refer to
[0125] In the contact lens product according to the 6th example, when a weight percentage concentration of the cycloplegic agent in the buffer solution is ConA, the following condition is satisfied: ConA=0.25%.
[0126] In the contact lens product according to the 6th example, a diameter of the central region of the contact lens is DiC, an outer diameter of the first annular region of the contact lens is DiP1, the diopter of the central region of the contact lens is PowC, a maximal diopter of the first annular region of the contact lens is PowP1, and the value of DiC, DiP1, DiC/DiP1, PowC, PowP1 and |PowC−PowP1| of the 6th example are listed in Table 21.
TABLE-US-00031 TABLE 21 6th example DiC (mm) 9.00 DiP1 (mm) 14.00 DiC/DiP1 0.64 PowC (D) −2.50 PowP1 (D) −2.25 |PowC − PowP1| (D) 0.25
[0127] Please refer to Table 22 and
TABLE-US-00032 TABLE 22 6th example radius (mm) diopter (D) −7.00 −2.25 −6.50 −2.30 −6.00 −2.35 −5.50 −2.40 −5.00 −2.45 −4.50 −2.50 −4.00 −2.50 −3.50 −2.50 −3.00 −2.50 −2.50 −2.50 −2.00 −2.50 −1.50 −2.50 −1.00 −2.50 −0.50 −2.50 0.00 −2.50 0.50 −2.50 1.00 −2.50 1.50 −2.50 2.00 −2.50 2.50 −2.50 3.00 −2.50 3.50 −2.50 4.00 −2.50 4.50 −2.50 5.00 −2.45 5.50 −2.40 6.00 −2.35 6.50 −2.30 7.00 −2.25
[0128] In the 6th example, the contact lens is made of hydrogel. A composition for manufacturing the hydrogel of the 6th example is listed in Table 23A.
TABLE-US-00033 TABLE 23A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 90.15 monomer N-vinyl-2-pyrrolidinone 0.8 crosslinking agent ethylene glycol dimethacrylate 0.6 initiator 2-hydroxy-2-methyl-propiophenone 0.7 diluent glycerol 6.3 visible light 1,4-bis[(2-methacryloxyethyl)amino]- 0.25 absorbing agent 9,10-anthraquinone short-wavelength 2-(4-benzoyl-3-hydroxyphenoxy)ethyl 1.2 light absorbing agent acrylate
[0129] In the contact lens product according to the 6th example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 6th example are listed in Table 23B.
TABLE-US-00034 TABLE 23B 6th example Avi (%) Abl (%) Auv (%) 24.43 16.50 75.89
6TH COMPARATIVE EXAMPLE
[0130] The main difference between the 6th comparative example and the 6th example is the 6th comparative example in lack of the visible light absorbing agent and the short-wavelength light absorbing agent. In the 6th comparative example, the contact lens is made of hydrogel. A composition for manufacturing the hydrogel of the 6th comparative example is listed in Table 24A.
TABLE-US-00035 TABLE 24A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 91.6 monomer N-vinyl-2-pyrrolidinone 0.8 crosslinking ethylene glycol dimethacrylate 0.6 agent initiator 2-hydroxy-2-methyl-propiophenone 0.7 diluent glycerol 6.3
[0131] In the contact lens product according to the 6th comparative example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 6th comparative example are listed in Table 24B.
TABLE-US-00036 TABLE 24B 6th comparative example Avi (%) Abl (%) Auv (%) 8.75 10.88 15.02
7TH EXAMPLE
[0132] In the 7th example, a contact lens product (not shown) includes a contact lens and a buffer solution. The contact lens is immersed in the buffer solution, and the buffer solution includes a cycloplegic agent. The contact lens includes a central region, a first annular region and a second annular region. The central region, the second annular region and the first annular region are sequentially connected from a center of the contact lens to a periphery of the contact lens and are concentric. At least one of the central region, the second annular region and the first annular region is aspheric. The schematic view of the contact lens product of the 7th example can refer to
[0133] In the contact lens product according to the 7th example, when a weight percentage concentration of the cycloplegic agent in the buffer solution is ConA, the following condition is satisfied: ConA=0.13%.
[0134] In the contact lens product according to the 7th example, a diameter of the central region of the contact lens is DiC, an outer diameter of the first annular region of the contact lens is DiP1, an outer diameter of the second annular region of the contact lens is DiP2, a diopter of the central region of the contact lens is PowC, a maximal diopter of the first annular region of the contact lens is PowP1, a maximal diopter of the second annular region of the contact lens is PowP2, and the value of DiC, DiP1, DiP2, DiC/DiP1, DiC/DiP2, PowC, PowP1, PowP2 and |PowC−PowP1| of the 7th example are listed in Table 25.
TABLE-US-00037 TABLE 25 7th example DiC (mm) 4.00 PowC (D) −3.00 DiP1 (mm) 15.00 PowP1 (D) −1.00 DiP2 (mm) 8.00 PowP2 (D) −2.00 DiC/DiP1 0.27 |PowC − PowP1| (D) 2.00 DiC/DiP2 0.50
[0135] Please refer to Table 26 and
TABLE-US-00038 TABLE 26 7th example radius (mm) diopter (D) −7.50 −1.00 −7.00 −1.14 −6.50 −1.29 −6.00 −1.43 −5.50 −1.57 −5.00 −1.71 −4.50 −1.86 −4.00 −2.00 −3.50 −2.25 −3.00 −2.50 −2.50 −2.75 −2.00 −3.00 −1.50 −3.00 −1.00 −3.00 −0.50 −3.00 0.00 −3.00 0.50 −3.00 1.00 −3.00 1.50 −3.00 2.00 −3.00 2.50 −2.75 3.00 −2.50 3.50 −2.25 4.00 −2.00 4.50 −1.86 5.00 −1.71 5.50 −1.57 6.00 −1.43 6.50 −1.29 7.00 −1.14 7.50 −1.00
[0136] In the 7th example, the contact lens is made of hydrogel. A composition for manufacturing the hydrogel of the 7th example is listed in Table 27A.
TABLE-US-00039 TABLE 27A function Ingredient Content (wt %) monomer 2-hydroxyethyl methacrylate 81 monomer methacrylic acid 2.3 crosslinking ethylene glycol dimethacrylate 0.4 agent crosslinking 1,1,1-trimethylol propane 0.2 agent trimethacrylate initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent glycerol 13.5 short-wavelength 4-(phenyldiazenyl) phenyl 2.0 light methacrylate absorbing agent
[0137] In the contact lens product according to the 7th example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 7th example are listed in Table 27B.
TABLE-US-00040 TABLE 27B 7th example Avi (%) Abl (%) Auv (%) 22.22 49.81 96.23
7TH COMPARATIVE EXAMPLE
[0138] The main difference between the 7th comparative example and the 7th example is the 7th comparative example in lack of the short-wavelength light absorbing agent. In the 7th comparative example, the contact lens is made of hydrogel. A composition for manufacturing the hydrogel of the 7th comparative example is listed in Table 28A.
TABLE-US-00041 TABLE 28A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 83 monomer methacrylic acid 2.3 crosslinking ethylene glycol dimethacrylate 0.4 agent crosslinking 1,1,1-trimethylol propane 0.2 agent trimethacrylate initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent glycerol 13.5
[0139] In the contact lens product according to the 7th comparative example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 7th comparative example are listed in Table 28B.
TABLE-US-00042 TABLE 28B 7th comparative example Avi (%) Abl (%) Auv (%) 7.30 8.21 13.25
8TH EXAMPLE
[0140] In the 8th example, a contact lens product (not shown) includes a contact lens and a buffer solution. The contact lens is immersed in the buffer solution, and the buffer solution includes a cycloplegic agent. The contact lens includes a central region and a first annular region. The first annular region concentrically surrounds the central region. A diopter of the first annular region is different from a diopter of the central region. The schematic view of the contact lens product of the 8th example can refer to
[0141] In the contact lens product according to the 8th example, when a weight percentage concentration of the cycloplegic agent in the buffer solution is ConA, the following condition is satisfied: ConA=0.10%.
[0142] In the contact lens product according to the 8th example, a diameter of the central region of the contact lens is DiC, an outer diameter of the first annular region of the contact lens is DiP1, the diopter of the central region of the contact lens is PowC, a maximal diopter of the first annular region of the contact lens is PowP1, and the value of DiC, DiP1, DiC/DiP1, PowC, PowP1 and |PowC−PowP1| of the 8th example are listed in Table 29.
TABLE-US-00043 TABLE 29 8th example DiC (mm) 5.00 PowC (D) −3.50 DiP1 (mm) 10.00 PowP1 (D) −1.75 DiC/DiP1 0.50 |PowC − PowP1| (D) 1.75
[0143] Please refer to Table 30 and
TABLE-US-00044 TABLE 30 8th example radius (mm) diopter (D) −5.00 −1.75 −4.50 −2.10 −4.00 −2.45 −3.50 −2.80 −3.00 −3.15 −2.50 −3.50 −2.00 −3.50 −1.50 −3.50 −1.00 −3.50 −0.50 −3.50 0.00 −3.50 0.50 −3.50 1.00 −3.50 1.50 −3.50 2.00 −3.50 2.50 −3.50 3.00 −3.15 3.50 −2.80 4.00 −2.45 4.50 −2.10 5.00 −1.75
[0144] In the 8th example, the contact lens is made of hydrogel. A composition for manufacturing the hydrogel of the 8th example is listed in Table 31A.
TABLE-US-00045 TABLE 31A function Ingredient Content (wt %) monomer 2-hydroxyethyl methacrylate 44 monomer glycerol monomethacrylate 42 crosslinking ethylene glycol dimethacrylate 0.5 agent crosslinking 1,1,1-trimethylol propane 0.3 agent trimethacrylate initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent glycerol 10.6 short-wavelength 4-(phenyldiazenyl) phenyl 2 light methacrylate absorbing agent
[0145] In the contact lens product according to the 8th example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 8th example are listed in Table 31B.
TABLE-US-00046 TABLE 31B 8th example Avi (%) Abl (%) Auv (%) 23.80 50.70 96.80
8TH COMPARATIVE EXAMPLE
[0146] The main difference between the 8th comparative example and the 8th example is the 8th comparative example in lack of the short-wavelength light absorbing agent. In the 8th comparative example, the contact lens is made of hydrogel. A composition for manufacturing the hydrogel of the 8th comparative example is listed in Table 32A.
TABLE-US-00047 TABLE 32A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 46 monomer glycerol monomethacrylate 42 crosslinking ethylene glycol dimethacrylate 0.5 agent crosslinking 1,1,1-trimethylol propane 0.3 agent trimethacrylate initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent glycerol 10.6
[0147] In the contact lens product according to the 8th comparative example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 8th comparative example are listed in Table 32B.
TABLE-US-00048 TABLE 32B 8th comparative example Avi (%) Abl (%) Auv (%) 4.25 2.50 8.85
9TH EXAMPLE
[0148] In the 9th example, a contact lens product (not shown) includes a contact lens and a buffer solution. The contact lens is immersed in the buffer solution, and the buffer solution includes a cycloplegic agent. The contact lens includes a central region, a first annular region and a second annular region. The central region, the second annular region and the first annular region are sequentially connected from a center of the contact lens to a periphery of the contact lens and are concentric. At least one of the central region, the second annular region and the first annular region is aspheric. The schematic view of the contact lens product of the 9th example can refer to
[0149] In the contact lens product according to the 9th example, when a weight percentage concentration of the cycloplegic agent in the buffer solution is ConA, the following condition is satisfied: ConA=0.08%.
[0150] In the contact lens product according to the 9th example, a diameter of the central region of the contact lens is DiC, an outer diameter of the first annular region of the contact lens is DiP1, an outer diameter of the second annular region of the contact lens is DiP2, the diopter of the central region of the contact lens is PowC, a maximal diopter of the first annular region of the contact lens is PowP1, a maximal diopter of the second annular region of the contact lens is PowP2, and the value of DiC, DiP1, DiP2, DiC/DiP1, DiC/DiP2, PowC, PowP1, PowP2 and |PowC−PowP1| of the 9th example are listed in Table 33.
TABLE-US-00049 TABLE 33 9th example DiC (mm) 6.00 DiP1 (mm) 14.00 DiP2 (mm) 10.00 DiC/DiP1 0.43 DiC/DiP2 0.60 PowC (D) −4.00 PowP1 (D) −3.25 PowP2 (D) −3.75 |PowC − PowP1| (D) 0.75
[0151] Please refer to Table 34 and
TABLE-US-00050 TABLE 34 9th example radius (mm) diopter (D) −7.00 −3.25 −6.50 −3.38 −6.00 −3.50 −5.50 −3.63 −5.00 −3.75 −4.50 −3.81 −4.00 −3.88 −3.50 −3.94 −3.00 −4.00 −2.50 −4.00 −2.00 −4.00 −1.50 −4.00 −1.00 −4.00 −0.50 −4.00 0.00 −4.00 0.50 −4.00 1.00 −4.00 1.50 −4.00 2.00 −4.00 2.50 −4.00 3.00 −4.00 3.50 −3.94 4.00 −3.88 4.50 −3.81 5.00 −3.75 5.50 −3.63 6.00 −3.50 6.50 −3.38 7.00 −3.25
[0152] In the 9th example, the contact lens is made of hydrogel. A composition for manufacturing the hydrogel of the 9th example is listed in Table 35A.
TABLE-US-00051 TABLE 35A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 89.5 monomer N-vinyl-2-pyrrolidinone 0.8 crosslinking ethylene glycol dimethacrylate 0.6 agent initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent glycerol 6.5 short-wave- 4-(phenyldiazenyl) phenyl 2 length light methacrylate absorbing agent
[0153] In the contact lens product according to the 9th example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 9th example are listed in Table 35B.
TABLE-US-00052 TABLE 35B 9th example Avi (%) Abl (%) Auv (%) 22.30 48.60 96.60
9TH COMPARATIVE EXAMPLE
[0154] The main difference between the 9th comparative example and the 9th example is the 9th comparative example in lack of the short-wavelength light absorbing agent. In the 9th comparative example, the contact lens is made of hydrogel. A composition for manufacturing the hydrogel of the 9th comparative example is listed in Table 36A.
TABLE-US-00053 TABLE 36A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 91.5 monomer N-vinyl-2-pyrrolidinone 0.8 crosslinking ethylene glycol dimethacrylate 0.6 agent initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent glycerol 6.5
[0155] In the contact lens product according to the 9th comparative example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 9th comparative example are listed in Table 36B.
TABLE-US-00054 TABLE 36B 9th comparative example Avi (%) Abl (%) Auv (%) 4.50 3.00 5.50
10TH EXAMPLE
[0156] In the 10th example, a contact lens product (not shown) includes a contact lens and a buffer solution. The contact lens is immersed in the buffer solution, and the buffer solution includes a cycloplegic agent. The contact lens includes a central region and a first annular region. The first annular region concentrically surrounds the central region. A diopter of the first annular region is different from a diopter of the central region. The schematic view of the contact lens product of the 10th example can refer to
[0157] In the contact lens product according to the 10th example, when a weight percentage concentration of the cycloplegic agent in the buffer solution is ConA, the following condition is satisfied: ConA=0.05%.
[0158] In the contact lens product according to the 10th example, a diameter of the central region of the contact lens is DiC, an outer diameter of the first annular region of the contact lens is DiP1, the diopter of the central region of the contact lens is PowC, a maximal diopter of the first annular region of the contact lens is PowP1, and the value of DiC, DiP1, DiC/DiP1, PowC, PowP1 and |PowC−PowP1| of the 10th example are listed in Table 37.
TABLE-US-00055 TABLE 37 10th example DiC (mm) 7.00 DiP1 (mm) 12.00 DiC/DiP1 0.58 PowC (D) −4.50 PowP1 (D) −3.00 |PowC − PowP1| (D) 1.50
[0159] Please refer to Table 38 and
TABLE-US-00056 TABLE 38 10th example radius (mm) diopter (D) −6.00 −3.00 −5.50 −3.30 −5.00 −3.60 −4.50 −3.90 −4.00 −4.20 −3.50 −4.50 −3.00 −4.50 −2.50 −4.50 −2.00 −4.50 −1.50 −4.50 −1.00 −4.50 −0.50 −4.50 0.00 −4.50 0.50 −4.50 1.00 −4.50 1.50 −4.50 2.00 −4.50 2.50 −4.50 3.00 −4.50 3.50 −4.50 4.00 −4.20 4.50 −3.90 5.00 −3.60 5.50 −3.30 6.00 −3.00
[0160] In the 10th example, the contact lens is made of silicone hydrogel. A composition for manufacturing the silicone hydrogel of the 10th example is listed in Table 39A.
TABLE-US-00057 TABLE 39A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 2.3 monomer 3-methacryloyloxypropyltris 28 (trimethylsilyloxy)silane monomer N-vinyl-2-pyrrolidinone 20.2 monomer N,N-dimethyl acrylamide 12.3 monomer methacrylic acid 1.5 monomer 3-(3-methacryloxy-2- 21.5 hydroxypropoxy)propylbis (trimethylsiloxy)methylsilane crosslinking ethylene glycol dimethacrylate 0.6 agent initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent isopropyl alcohol 10 short-wave- 4-(phenyldiazenyl) phenyl 2 length light methacrylate absorbing agent short-wave- 2-(4-benzoyl-3-hydroxyphenoxy)ethyl 1 length light acrylate absorbing agent
[0161] In the contact lens product according to the 10th example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 10th example are listed in Table 39B.
TABLE-US-00058 TABLE 39B 10th example Avi (%) Abl (%) Auv (%) 24.39 52.04 96.87
10TH COMPARATIVE EXAMPLE
[0162] The main difference between the 10th comparative example and the 10th example is the 10th comparative example in lack of the short-wavelength light absorbing agent. In the 10th comparative example, the contact lens is made of silicone hydrogel. A composition for manufacturing the silicone hydrogel of the 10th comparative example is listed in Table 40A.
TABLE-US-00059 TABLE 40A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 5.3 monomer 3-methacryloyloxypropyltris 28 (trimethylsilyloxy)silane monomer N-vinyl-2-pyrrolidinone 20.2 monomer N,N-dimethyl acrylamide 12.3 monomer methacrylic acid 1.5 monomer 3-(3-methacryloxy-2- 21.5 hydroxypropoxy)propylbis (trimethylsiloxy)methylsilane crosslinking ethylene glycol dimethacrylate 0.6 agent initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent isopropyl alcohol 10
[0163] In the contact lens product according to the 10th comparative example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 10th comparative example are listed in Table 40B.
TABLE-US-00060 TABLE 40B 10th comparative example Avi (%) Abl (%) Auv (%) 7.85 10.31 19.51
11TH EXAMPLE
[0164] In the 11th example, a contact lens product (not shown) includes a contact lens and a buffer solution. The contact lens is immersed in the buffer solution, and the buffer solution includes a cycloplegic agent. The contact lens includes a central region, a first annular region and a second annular region. The central region, the second annular region and the first annular region are sequentially connected from a center of the contact lens to a periphery of the contact lens and are concentric. At least one of the central region, the second annular region and the first annular region is aspheric. The schematic view of the contact lens product of the 11th example can refer to
[0165] In the contact lens product according to the 11th example, when a weight percentage concentration of the cycloplegic agent in the buffer solution is ConA, the following condition is satisfied: ConA=0.03%.
[0166] In the contact lens product according to the 11th example, a diameter of the central region of the contact lens is DiC, an outer diameter of the first annular region of the contact lens is DiP1, an outer diameter of the second annular region of the contact lens is DiP2, a diopter of the central region of the contact lens is PowC, a maximal diopter of the first annular region of the contact lens is PowP1, a maximal diopter of the second annular region of the contact lens is PowP2, and the value of DiC, DiP1, DiP2, DiC/DiP1, DiC/DiP2, PowC, PowP1, PowP2 and |PowC−PowP1| of the 11th example are listed in Table 41.
TABLE-US-00061 TABLE 41 11th example DiC (mm) 8.00 DiP1 (mm) 13.00 DiP2 (mm) 10.00 DiC/DiP1 0.62 DiC/DiP2 0.80 PowC (D) −5.00 PowP1 (D) −2.75 PowP2 (D) −4.00 |PowC − PowP1| (D) 2.25
[0167] Please refer to Table 42 and
TABLE-US-00062 TABLE 42 11th example radius (mm) diopter (D) −6.50 −2.75 −6.00 −3.17 −5.50 −3.58 −5.00 −4.00 −4.50 −4.50 −4.00 −5.00 −3.50 −5.00 −3.00 −5.00 −2.50 −5.00 −2.00 −5.00 −1.50 −5.00 −1.00 −5.00 −0.50 −5.00 0.00 −5.00 0.50 −5.00 1.00 −5.00 1.50 −5.00 2.00 −5.00 2.50 −5.00 3.00 −5.00 3.50 −5.00 4.00 −5.00 4.50 −4.50 5.00 −4.00 5.50 −3.58 6.00 −3.17 6.50 −2.75
[0168] In the 11th example, the contact lens is made of silicone hydrogel. A composition for manufacturing the silicone hydrogel of the 11th example is listed in Table 43A.
TABLE-US-00063 TABLE 43A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 4 monomer 3-methacryloyloxypropyltris 28 (trimethylsilyloxy)silane monomer N-vinyl-2-pyrrolidinone 20.5 monomer N,N-dimethyl acrylamide 12.3 monomer (3-acryloxy-2-hydroxypropoxypropyl) 22 terminated polydimethylsiloxane crosslinking ethylene glycol dimethacrylate 0.5 agent initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent 1-hexanol 11 short-wavelength- 2-(4-benzoyl-3-hydroxyphenoxy)ethyl 1.1 light acrylate absorbing agent
[0169] In the contact lens product according to the 11th example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 11th example are listed in Table 43B.
TABLE-US-00064 TABLE 43B 11th example Avi (%) Abl (%) Auv (%) 9.00 14.90 90.00
11TH COMPARATIVE EXAMPLE
[0170] The main difference between the 11th comparative example and the 11th example is the 11th comparative example in lack of the short-wavelength light absorbing agent. In the 11th comparative example, the contact lens is made of silicone hydrogel. A composition for manufacturing the silicone hydrogel of the 11th comparative example is listed in Table 44A.
TABLE-US-00065 TABLE 44A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 5.1 monomer 3-methacryloyloxypropyltris 28 (trimethylsilyloxy)silane monomer N-vinyl-2-pyrrolidinone 20.5 monomer N,N-dimethyl acrylamide 12.3 monomer (3-acryloxy-2-hydroxypropoxypropyl) 22 terminated polydimethylsiloxane crosslinking ethylene glycol dimethacrylate 0.5 agent initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent 1-hexanol 11
[0171] In the contact lens product according to the 11th comparative example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 11th comparative example are listed in Table 44B.
TABLE-US-00066 TABLE 44B 11th comparative example Avi (%) Abl (%) Auv (%) 7.80 9.40 24.00
12TH EXAMPLE
[0172] In the 12th example, a contact lens product (not shown) includes a contact lens and a buffer solution. The contact lens is immersed in the buffer solution, and the buffer solution includes a cycloplegic agent. The contact lens includes a central region, a first annular region, a second annular region and a third annular region. The central region, the third annular region, the second annular region and the first annular region are sequentially connected from a center of the contact lens to a periphery of the contact lens and are concentric. At least one of the central region, the third annular region, the second annular region and the first annular region is aspheric. The schematic view of the contact lens product of the 12th example can refer to
[0173] In the contact lens product according to the 12th example, when a weight percentage concentration of the cycloplegic agent in the buffer solution is ConA, the following condition is satisfied: ConA=0.01%.
[0174] In the contact lens product according to the 12th example, a diameter of the central region of the contact lens is DiC, an outer diameter of the first annular region of the contact lens is DiP1, an outer diameter of the second annular region of the contact lens is DiP2, an outer diameter of the third annular region of the contact lens is DiP3, a diopter of the central region of the contact lens is PowC, a maximal diopter of the first annular region of the contact lens is PowP1, a maximal diopter of the second annular region of the contact lens is PowP2, a maximal diopter of the third annular region of the contact lens is PowP3, and the value of DiC, DiP1, DiP2, DiP3, DiC/DiP1, DiC/DiP2, PowC, PowP1, PowP2, PowP3 and |PowC−PowP1| of the 12th example are listed in Table 45.
TABLE-US-00067 TABLE 45 12th example DiC (mm) 4.00 PowC (D) −5.50 DiP1 (mm) 16.00 PowP1 (D) −3.00 DiP2 (mm) 12.00 PowP2 (D) −3.00 DiP3 (mm) 8.00 PowP3 (D) −3.75 DiC/DiP1 0.25 |PowC − PowP1| (D) 2.50 DiC/DiP2 0.33
[0175] Please refer to Table 46 and
TABLE-US-00068 TABLE 46 12th example radius (mm) diopter (D) radius (mm) diopter (D) −8.00 −3.00 0.50 −5.50 −7.50 −3.00 1.00 −5.50 −7.00 −3.00 1.50 −5.50 −6.50 −3.00 2.00 −5.50 −6.00 −3.00 2.50 −5.06 −5.50 −3.19 3.00 −4.63 −5.00 −3.38 3.50 −4.19 −4.50 −3.56 4.00 −3.75 −4.00 −3.75 4.50 −3.56 −3.50 −4.19 5.00 −3.38 −3.00 −4.63 5.50 −3.19 −2.50 −5.06 6.00 −3.00 −2.00 −5.50 6.50 −3.00 −1.50 −5.50 7.00 −3.00 −1.00 −5.50 7.50 −3.00 −0.50 −5.50 8.00 −3.00 0.00 −5.50
[0176] In the 12th example, the contact lens is made of silicone hydrogel. A composition for manufacturing the silicone hydrogel of the 12th example is listed in Table 47A.
TABLE-US-00069 TABLE 47A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 4.2 monomer 3-methacryloyloxypropyltris 24.1 (trimethylsilyloxy)silane monomer N-vinyl-2-pyrrolidinone 19.99 monomer N,N-dimethyl acrylamide 11.00 monomer methyl methacrylate 4.2 oligomer polysiloxane macromer 25 initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent ethanol 10 visible light 1,4-bis[(2-methacryloxyethyl)amino]- 0.01 absorbing 9,10-anthraquinone agent short-wavelength 2-(4-benzoyl-3-hydroxyphenoxy)ethyl 0.9 light acrylate absorbing agent
[0177] In the contact lens product according to the 12th example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 12th example are listed in Table 47B.
TABLE-US-00070 TABLE 47B 12th example Avi (%) Abl (%) Auv (%) 9.70 12.40 89.20
12TH COMPARATIVE EXAMPLE
[0178] The main difference between the 12th comparative example and the 12th example is the 12th comparative example in lack of the visible light absorbing agent and the short-wavelength light absorbing agent. In the 12th comparative example, the contact lens is made of silicone hydrogel. A composition for manufacturing the silicone hydrogel of the 12th comparative example is listed in Table 48A.
TABLE-US-00071 TABLE 48A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 5.11 monomer 3-methacryloyloxypropyltris 24.1 (trimethylsilyloxy)silane monomer N-vinyl-2-pyrrolidinone 19.99 monomer N,N-dimethyl acrylamide 11.00 monomer methyl methacrylate 4.2 oligomer polysiloxane macromer 25 initiator 2-hydroxy-2-methyl-propiophenone 0.6 diluent ethanol 10
[0179] In the contact lens product according to the 12th comparative example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 12th comparative example are listed in Table 48B.
TABLE-US-00072 TABLE 48B 12th comparative example Avi (%) Abl (%) Auv (%) 6.37 7.40 24.20
13TH EXAMPLE
[0180] In the 13th example, a contact lens product (not shown) includes a contact lens and a buffer solution. The contact lens is immersed in the buffer solution, and the buffer solution includes a cycloplegic agent. The schematic view of the contact lens product of the 13th example can refer to
[0181] In the contact lens product according to the 13th example, when a weight percentage concentration of the cycloplegic agent in the buffer solution is ConA, the following condition is satisfied: ConA=0.18%.
[0182] In the contact lens product according to the 13th example, a diameter of the contact lens is 5 mm, a diopter of the contact lens is −3.50 D.
[0183] Please refer to Table 49 and
TABLE-US-00073 TABLE 49 13th example radius (mm) diopter (D) radius (mm) diopter (D) −2.50 −3.50 0.50 −3.50 −2.00 −3.50 1.00 −3.50 −1.50 −3.50 1.50 −3.50 −1.00 −3.50 2.00 −3.50 −0.50 −3.50 2.50 −3.50 0.00 −3.50
[0184] In the 13th example, the contact lens is made of silicone hydrogel. A composition for manufacturing the silicone hydrogel of the 13th example is listed in Table 50A.
TABLE-US-00074 TABLE 50A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 3.5 monomer 3-methacryloyloxypropyltris 26.00 (trimethylsilyloxy)silane monomer N-vinyl-2-pyrrolidinone 19.50 monomer N,N-dimethyl acrylamide 11.10 monomer methyl methacrylate 4.10 oligomer polysiloxane macromer 24.50 initiator 2-hydroxy-2-methyl-propiophenone 1.00 diluent ethanol 9.00 visible light 1,4-bis[(2-methacryloxyethyl)amino]- 0.30 absorbing 9,10-anthraquinone agent short-wavelength 2-(4-benzoyl-3-hydroxyphenoxy)ethyl 1.00 light acrylate absorbing agent
[0185] In the contact lens product according to the 13th example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 13th example are listed in Table 50B.
TABLE-US-00075 TABLE 50B 13th example Avi (%) Abl (%) Auv (%) 29.30 24.70 89.70
13TH COMPARATIVE EXAMPLE
[0186] The main difference between the 13th comparative example and the 13th example is the 13th comparative example in lack of the visible light absorbing agent and the short-wavelength light absorbing agent. In the 13th comparative example, the contact lens is made of silicone hydrogel. A composition for manufacturing the silicone hydrogel of the 13th comparative example is listed in Table 51A.
TABLE-US-00076 TABLE 51A Content function Ingredient (wt %) monomer 2-hydroxyethyl methacrylate 4.8 monomer 3-methacryloyloxypropyltris 26.00 (trimethylsilyloxy)silane monomer N-vinyl-2-pyrrolidinone 19.50 monomer N,N-dimethyl acrylamide 11.10 monomer methyl methacrylate 4.10 oligomer polysiloxane macromer 24.50 initiator 2-hydroxy-2-methyl-propiophenone 1.00 diluent ethanol 9.00
[0187] In the contact lens product according to the 13th comparative example, a visible light absorption rate of the contact lens is Avi, a blue light absorption rate of the contact lens is Abl, an ultraviolet light absorption rate of the contact lens is Auv, and the value of Avi, Abl and Auv of the 13th comparative example are listed in Table 51B.
TABLE-US-00077 TABLE 51B 13th comparative example Avi (%) Abl (%) Auv (%) 6.37 7.40 24.20
[0188]
[0189]
[0190]
[0191] According to the contact lens of the present disclosure, an aspheric surface refers to a curved shape of a front surface or a back surface shown in a cross-sectional view taken along the central line of the contact lens. The front surface is a surface of the contact lens far away from the cornea, and the back surface is a surface of the contact lens close to the cornea.
[0192] According to the contact lens of the present disclosure, the diopter is represented by D. When the contact lens is for correcting myopia, the diopter thereof is negative; when the contact lens is for correcting hyperopia, the diopter thereof is positive.
[0193] According to the present disclosure, the cycloplegic agent can include but is not limited to atropine ((3-endo)-8-methyl-8-azabicyclo[3.2.1]oct-3-yl tropate), tropicamide (N-ethyl-3-hydroxy-2-phenyl-N-(4-pyridinylmethyl)propanamide), cyclopentolate (2-(dimethylamino)ethyl (1-hydroxycyclopentyl)(phenyl)acetate), homatropine ((3-endo)-8-methyl-8-azabicyclo[3.2.1]oct-3-yl hydroxy(phenyl)acetate), scopolamine ((1R,2R,4S,5S,7S)-9-methyl-3-oxa-9-azatricyclo[3.3.1.0.sup.2.4]non-7-yl(2S)-3-hydroxy-2-phenylpropanoate), eucatropine (1,2,2,6-tetramethyl-4-piperidinyl hydroxy(phenyl)acetate) or the salt thereof. The cycloplegic agent, also known as a mydriatic agent, belongs to a parasympathetic blocker, i.e., a non-selective m-type muscarinic receptor blocker, which can control the paralysis and relaxation of the ciliary muscle of pupils by blocking the muscarinic receptor so as to enlarge the pupil.
[0194] It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present disclosure without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the present disclosure cover modifications and variations of this disclosure provided they fall within the scope of the following claims.