ASPHERICAL LENS DESIGN WITH POWER DEPENDENT SPHERICAL ABERRATION
20230085523 · 2023-03-16
Inventors
Cpc classification
G02C2202/22
PHYSICS
International classification
Abstract
Described herein are soft contact lens sets and methods of designing soft contact lens sets based on incorporating different levels of spherical aberration into the lens design depending on the target spherical power. The different levels of spherical aberration are equal to or less than zero D/mm.sup.2, and account for clinically measured population-average ocular spherical aberration, manufacturing variations and generalized accommodative ability.
Claims
1. A set of contact lenses, comprising: each contact lens in said set having a first surface adapted to be placed against a user's eye and a second opposing surface, wherein the first and second surfaces meet at a lens edge defining a periphery of said lens, an optical power profile and a spherical aberration (SPHA) profile; wherein for positive optical lens powers, the SPHA profile is less than or equal to zero (0) D/mm.sup.2 and greater than or equal to −0.055 D/mm.sup.2; wherein for negative optical lens powers between about −3D and 0D, the SPHA profile is less than or equal to 0.0167*SP D/mm.sup.2 and greater than or equal to −0.055 D/mm.sup.2; wherein for negative optical lens powers between −3.5D and about −3D, the SPHA profile is less than or equal to 0.0167*SP D/mm.sup.2 and greater than or equal to 0.0356*SP+0.0467 D/mm.sup.2; and wherein for negative optical lens powers between −8D and −3.5D, the SPHA profile is less than or equal to 0.0082*SP-0.0301 D/mm.sup.2 and greater than or equal to 0.0356*SP+0.0467 D/mm.sup.2.
2. The set of contact lenses according to claim 1, wherein for negative optical powers between −8D and −3.5D the SPHA profile is less than or equal to 0.0082*SP-0.0301 D/mm.sup.2 and greater than 0.0167*SP D/mm.sup.2.
3. The set of contact lenses according to claim 1, wherein for negative optical powers between −8D and about −3D the SPHA profile is less than 0.0167*SP D/mm.sup.2 and greater than or equal to 0.0356*SP+0.0467 D/mm.sup.2.
4. The set of contact lenses according to claim 1, wherein the first and second surfaces are selected from the group consisting of aspheric, spherical, and mixtures thereof
5. The set of contact lenses according to claim 1, wherein the set comprises toric lenses.
6. The set of contact lenses according to claim 1, wherein the set comprises multifocal lenses.
7. The set of contact lenses according to claim 1, wherein the set comprises improved visual acuity as compared to a spherical comparator set of contact lenses.
8. A set of contact lenses, comprising: each contact lens in said set having a first surface adapted to be placed against a user's eye and a second opposing surface, wherein the first and second surfaces meet at a lens edge defining a periphery of said lens, an optical power and a spherical aberration (SPHA) profile; wherein for positive optical lens powers, the SPHA profile is equal to 0 D/mm.sup.2; wherein for negative optical lens powers between about −3.5D and 0D, the SPHA profile is equal to 0.0167*SP D/mm.sup.2; and wherein for negative optical lens powers between −8D and −3.5D, the SPHA profile is 0.0082*SP-0.0301 D/mm.sup.2.
9. The set of contact lenses according to claim 8, wherein the first and second surfaces are selected from the group consisting of aspheric, spherical, and mixtures thereof
10. The set of contact lenses according to claim 8, wherein the set comprises toric lenses.
11. The set of contact lenses according to claim 8, wherein the set comprises multifocal lenses.
12. The set of contact lenses according to claim 8, wherein the set provides improved visual acuity as compared to a spherical comparator set of contact lenses. The set of contact lenses according to claim 8, wherein the set provides improved visual acuity as compared to a spherical comparator set of contact lenses.
13. A set of contact lenses, comprising: each contact lens in said set having a first surface adapted to be placed against a user's eye and a second opposing surface, wherein the first and second surfaces meet at a lens edge defining a periphery of said lens, an optical power profile and a spherical aberration (SPHA) profile; wherein for negative optical powers between about −3D and 0D and all positive optical powers, the SPHA profile is equal to −0.055 D/mm.sup.2; and wherein for negative optical lens powers between about −8D and about −3D, the SPHA profile is equal to 0.0356*SP+0.0467 D/mm.sup.2.
14. The set of contact lenses according to claim 13, wherein the first and second surfaces are selected from the group consisting of aspheric, spherical, and mixtures thereof
15. The set of contact lenses according to claim 13, wherein the set comprises toric lenses.
16. The set of contact lenses according to claim 13, wherein the set comprises multifocal lenses.
17. The set of contact lenses according to claim 13, wherein the set provides improved visual acuity as compared to a spherical comparator set of contact lenses. The set of contact lenses according to claim 13, wherein the set provides improved visual acuity as compared to a spherical comparator sets of contact lenses.
18. A set of contact lenses, comprising: each contact lens in said set having a first surface adapted to be placed against a user's eye and a second opposing surface, wherein the first and second surfaces meet at a lens edge defining a periphery of said lens, an optical power and a spherical aberration (SPHA) profile; wherein for negative optical powers between −2.9D and 0D and all positive optical powers, the SPHA profile is equal to −0.055 D/mm.sup.2; and wherein for negative optical lens powers between about −8D and −2.9D, the SPHA profile is equal to 0.0356*SP+0.0467 D/mm.sup.2.
19. The set of contact lenses according to claim 18, wherein the first and second surfaces are selected from the group consisting of aspheric, spherical, and mixtures thereof
20. The set of contact lenses according to claim 18, wherein the set comprises toric lenses.
21. The set of contact lenses according to claim 18, wherein the set comprises multifocal lenses.
22. The set of contact lenses according to claim 18, wherein the set provides improved visual acuity as compared to a spherical comparator set of contact lenses.
23. A method of making a set of contact lenses, the method comprising: a) measuring a population-average ocular spherical aberration profile; b) comparing the population-average ocular spherical aberration profile with a spherical comparator lens spherical aberration profile; c) creating a spherical aberration profile that compensates for the population-average ocular spherical aberration profile in relation to a spherical comparator lens spherical aberration profile as well as the level of user accommodation as a function of spherical power and manufacturing precision; and d) forming a set of soft contact lenses exhibiting the spherical aberration profile across a range of spherical power.
24. The method of claim 23, wherein the spherical aberration profile is equal to or less than zero (0) D/mm.sup.2 across the spherical power range.
25. The method of claim 24, wherein the spherical aberration profile is described by two or more linear equations across the spherical power range.
26. The method of any of claim 23, wherein the set of contact lenses consists of aspherical lenses, toric lenses, multifocal lenses, and combinations thereof.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The following drawings show generally, by way of example, but not by way of limitation, various examples discussed in the present disclosure. In the drawings:
[0020]
[0021]
[0022]
[0023]
DETAILED DESCRIPTION
[0024] As noted, the present invention provides an improved soft contact lens design, a method for designing such a lens, and a lens set that achieves improved vision by minimizing image blurring caused by SPHA. The design considers the ocular SPHA across a patient population as described below, as well as the effects on SPHA from manufacturing fluctuations and the accommodative abilities of patients with varying refractive errors.
[0025] A population-average ocular SPHA profile was created by plotting the average computed ocular SPHA as a function of spherical power (P.sub.0). The computed ocular SPHA was determined from the clinically measured wavefronts from about 3,500 subjects. The wavefronts were obtained using a wavefront senor or aberrometer such as the instruments available from Visionix, Luneau Technology Inc. The ocular power profile P(r) is defined as P(r)=(1/r)∂w/∂r, where w is the measured wavefront and r is the lens radius. The ocular power profiles P(r) were fitted with even polynomial: P(r)=P.sub.0+SA.sub.4r.sup.2+SA.sub.6r.sup.4+SA.sub.8r.sup.6+ . . . . The second order coefficient (SA.sub.4) is the ocular SPHA and has the units of D/mm.sup.2 where D=diopters and mm=millimeters. Following the above methodology, the ocular SPHA was computed for every subject and then averaged to generate the average computed ocular SPHA as shown by line 100 in
Lens Design Rationale
[0026] The inventive lens set incorporates several specific design principles and clinical observations. First, referring to
[0027] The inventive lens design is best suited for optimizing distance vision for eyes without an appreciable accommodation lag. However, as eyes age but before the onset of presbyopia, a small or moderate accommodation lag can develop and significantly affect near vision. In this case, the inventive lens design incorporates more negative SPHA into high minus powers than that exhibited by the spherical comparator lenses and smaller amounts of negative SPHA into the lower minus and plus powers. The exact values are determined in part by acknowledging that minus 3D lenses typically provide the best subjective vision. The minus 3D comparator spherical lens shown in
[0028] In summary, the inventive lens design prescribes an SPHA value calculated from a SPHA profile. The SPHA profile is defined as a continuous segmented function, each segment in the function associates a SPHA value (D/mm.sup.2) to the inventive lens design depending on its spherical power (D). The SPHA values are equal to or less than zero (0) D/mm.sup.2 which compensate for clinically measured ocular SPHA, manufacturing errors, and accommodative ability.
[0029] Referring back to the figures, as noted previously
[0030]
[0031] Although the specific SPHA profile for Example Lens 1 and Example Lens 2 are described above in specific detail, a set of lenses with improved visual performance across and entire range of sphere powers as compared to the spherical control lens will be achieved by a SPHA profile that, for positive optical powers, falls on or between the lines depicted on
[0032] As noted previously, for positive powers, the presently described lens sets are designed to incorporate less SPHA than the spherical control lens, providing improved vision. For higher negative powers, SPHA is less critical as normal accommodation can counter some SPHA in a lens.
[0033] The lens sets described herein were tested across a range of lens sphere powers. Visual acuity testing was performed on 39 subjects (78 eyes), where 36 eyes had a sphere power between −4D and −7.25D, 20 eyes had a sphere power between −0.075D and −3.0D, and 22 eyes had a sphere power between 0.5D and 3.0D. The subjects were between 18 and 65 years old, and all were habitual users of disposable silicone hydrogel or silicone hydrogel soft lenses in both eyes (1-day, 2-week or monthly lenses). All subjects had a cylinder error of less than or equal to −0.75D in each eye and had a corrected visual acuity of 20/25 (Snellen or equivalent) or better in each eye.
[0034] Visual acuity was measured by asking subjects to read the smallest letters on a Snellen chart which was four meters away in both monocular and binocular conditions. Visual acuity was expressed in logMAR units according to Table 1.
TABLE-US-00001 TABLE 1 Snellen to LogMAR Conversion Chart Snellen LogMAR 20/200 1 20/160 0.9 20/125 0.8 20/100 0.7 20/80 0.6 20/63 0.5 20/50 0.4 20/40 0.3 20/32 0.2 20/25 0.1 20/20 0 20/16 −0.1 20/12.5 −0.2 20/10 −0.3
[0035] The results of the visual acuity testing were averaged together and are reflected in