HYBRID ACCOMODATING INTRA-OCULAR LENS AND METHOD OF USE THEREOF
20230085833 · 2023-03-23
Inventors
Cpc classification
A61F2250/0018
HUMAN NECESSITIES
A61F2002/1682
HUMAN NECESSITIES
International classification
Abstract
An intra-ocular lens having an air-filled collapsible cavity situated between two optical elements wherein air is transferred from optical regions of the collapsible cavity to its peripheral haptic regions after being compressed by external force.
Claims
1. A partially fluid-filled intra-ocular lens comprising a first non-deformable optical element which is sealed around its perimeter to a second deformable optical element forming a sealed fluid-filled collapsible cavity, said first non-deformable optical element and said second deformable optical element each having central transparent optical regions and first and second haptic regions associated with respective ones of said first non-deformable optical element and said second deformable optical element and each sealingly connected to the other to form said sealed perimeter, wherein said first optical element has a convex shape upon its upper surface with a contact region of said convex upper surface pressing against a contact region of said deformable optical element leaving an air space in the remaining area between the optical regions of said first and second optical elements.
2. The intra-ocular lens of claim 1 wherein said sealed fluid-filled collapsible cavity comprises an optical region, located between said optical regions of said first and second optical elements, and a haptic region located between said optical region and said sealed perimeter of said haptic regions, wherein said fluid-filled collapsible cavity has at least one channel communicating between said optical region and said haptic region whereby when external force generated by ciliary muscle tension is directed upon the perimeter of the optical regions of said optical elements, said optical region of said fluid-filled cavity is compressed, thereby evacuating fluid within it toward the haptic region of said fluid-filled cavity through said at least one communicating channel and the optical surfaces of said first and second optical elements are compressed against one another, thereby focusing the eye upon distant objects, and whereby the elasticity of said deformable optical element causes said compression to be reduced when said ciliary muscle tension is reduced.
3. The intra-ocular lens of claim 1 wherein said fluid is air.
4. The intra-ocular lens of claim 1 wherein said contact region of said convex upper surface of said first optical element pressing against a contact region of said deformable optical element is an apex of said convex upper surface of said first optical element.
5. The intra-ocular lens of claim 2 wherein said at least one opening communicating between said optical region and said haptic region of said sealed fluid-filled collapsible cavity comprises a circular channel formed in the lower surface of said deformable optical element interconnecting with a plurality of radial channels formed in the lower surface of said deformable optical element.
6. The intra-ocular lens of claim 2 wherein said at least one opening communicating between said optical region and said haptic region comprises a circular channel formed in the upper surface of said non-deformable optical element interconnecting with a plurality of radial channels formed in the upper surface of said non-deformable optical element.
7. The intra-ocular lens of claim 2 wherein the upper convex surface of said first non-deformable optical element and the lower surface of said second deformable optical element are constructed with short radii of curvature.
8. A method of providing an accommodating intra-ocular lens for replacement in the lens capsule of an eye is provided by providing an intra-ocular lens of claim 1 in combination with an intra-ocular structure for transferring said ciliary muscle tension to said intra-ocular lens.
9. The method of claim 8 wherein said first and second optical elements are oriented within said eye such that the first non-deformable optical element is positioned anterior to the second deformable optical element.
10. An accommodating intra-ocular lens comprising a first non-deformable optical element which is sealed around its perimeter to a second deformable optical element, said first non-deformable optical element and said second deformable optical element each having central transparent optical regions and first and second haptic regions associated with respective ones of said first non-deformable optical element and said second deformable optical element and each sealingly connected to the other at said perimeter, wherein said first non-deformable optical element has a first contact surface comprising a convex contact region which contacts a second contact surface of said second deformable optical element, wherein a sealed air-filled compartment is defined between said first and second optical elements at a location between said central transparent optical regions and said first and second haptic regions, said air-filled compartment comprising an optical region portion and a haptic region portion, wherein in a resting state for focussing an eye upon near objects said optical region portion forms an air interface between peripheral portions of said optical regions of said first and second optical elements and wherein in a non-resting state for focussing an eye upon distant objects air is displaced outwardly from said optical region portion to said haptic region portion to remove said air interface and enable inner surfaces of said optical regions to contact each other to form a solid optical lens element, wherein in the non-resting state compression of said first contact surface of said first non-deformable optical element against said second contact surface of said second deformable optical element alters the curvature of said second deformable optical element, wherein said intra-ocular lens is adjustable from said resting state to said non-resting state when sufficient opposing forces are delivered to said peripheral portions of said optical regions and wherein said intra-ocular lens is adjustable from said non-resting state to said resting state when said opposing forces are reduced.
11. The intra-ocular lens of claim 10 wherein, when said lens is implanted in said eye, said lens is coupled to the ciliary muscle/suspensory ligament/zonule/lens capsule complex of said eye and said opposing forces are exerted by zonular tension caused by ciliary muscle action.
12. The intra-ocular lens of claim 11 wherein the elasticity of said second deformable optical element causes said lens to move to said resting state when said opposing forces are reduced.
13. The intra-ocular lens of any one of claim 10 wherein said air-filled compartment comprises at least one channel communicating between said optical region portion and said haptic region portion.
14. The intra-ocular lens of claim 10 wherein said first contact surface of said first non-deformable optical element which contacts said second contact region of said deformable optical element is an apex of said convex contact region.
15. The intra-ocular lens of claim 13 wherein said at least one channel communicating between said optical region portion and said haptic region portion of said sealed air-filled compartment comprises a circular channel formed in a surface of said second deformable optical element interconnecting with a plurality of radial channels formed in said surface of said second deformable optical element.
16. The intra-ocular lens of claim 13 wherein said at least one channel communicating between said optical region portion and said haptic region portion comprises a circular channel formed in a surface of said first non-deformable optical element interconnecting with a plurality of radial channels formed in said surface of said first non-deformable optical element.
17. The intra-ocular lens of claim 10 wherein said first contact surface comprising said convex contact region of said first non-deformable optical element and said second contact surface of said second deformable optical element are constructed with short radii of curvature.
18. The intra-ocular lens of claim 10 wherein when said lens is adjusted from said non-resting state to said resting state said inner surfaces of said optical regions separate without substantial adhesion in said peripheral portions to reform said air interface.
19. A method of providing an accommodating intra-ocular lens for replacement in the lens capsule of an eye comprises providing an intra-ocular lens of claim 10 in combination with an intra-ocular structure for transferring said ciliary muscle tension to said intra-ocular lens.
20. The method of claim 19 wherein said first and second optical elements are oriented within said eye such that said first non-deformable optical element is positioned anterior to said second deformable optical element.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Exemplary embodiments are illustrated in referenced figures of the drawings. It is intended that the embodiments and figures disclosed herein are to be considered illustrative rather than restrictive.
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DESCRIPTION
[0024] Throughout the following description specific details are set forth in order to provide a more thorough understanding to persons skilled in the art. However, well known elements may not have been shown or described in detail to avoid unnecessarily obscuring the disclosure. Accordingly, the description and drawings are to be regarded in an illustrative, rather than a restrictive sense. In this description and claims, where the term “fluid” is used it includes air and other gases, and liquids.
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[0028] In operation, the accommodated configuration, which is shown in
[0029] As shown in cross-section in
[0030] Rapid and even transfer of the air from the periphery of the optical region of deformable optical element 30 in the vicinity of surface 33 is enabled by radial slots 14 which carry the air to channel 12 after which it is evenly distributed via circular channel 12 around the annular haptic region 28 of air-filled compartment 18. Radial slots 14 connected to a circumferential channel 12 thus may surround the perimeter of the optical region of optical element 30 to allow air to circulate freely between the optical region 17 and the haptic region 28 of the air-filled compartment 18. Alternatively or in addition the radial slots 14 or circumferential channel 12 or both may be formed in the upper surface of the perimeter of the optical region of non-deformable optical element 32 to similarly allow air to circulate freely between the optical region 17 and the haptic region 28 of the air-filled compartment 18. This channel and network of radial slots is an optional feature of the design, which also provides a means for controlling material distortions that can occur when a spherical shell is forced to alter its shape. The width of the radial slots 14 and channel 12 can be selected to alter the flow of air as required.
[0031] Various shapes of the optical surfaces lining the hollow cavity can be selected to match specific optical requirements of any individual eye to tune the optical resolution of the image focused within the eye or to extend the eye's focal range.
[0032] The cross-sectional shape profile of the deformable optical element 30 can be customized to accelerate its shape recovery time. For example, the shape profile of the lower surface 33 of the deformable optical element 30 that contacts the upper surface 33 of the non-deformable optical element 32 at its apex can be of various configurations: flat, convex, concave, multi-focal or aspherical, provided that an air space resides between the remaining portions of the optical elements when the device is in its habitual resting state.
[0033] Supple supportive structures can be installed upon the perimeter of the optical regions of either of the two optical interfaces to reduce the risk of suction or adhesions between them, which could potentially bind their optical surfaces together immobilizing the movement of deformable optical element 30.
[0034] While in the embodiment illustrated in
[0035] Materials required for the construction of the optical elements are elastic with strong memory characteristics, readily resuming their original size and shape after being compressed, stretched or otherwise deformed. Materials commonly used for intra-ocular lens fabrication having good shape memory characteristics include but are not limited to the following classifications: silicones, silicone hydro-gels, hydrophobic and hydrophilic acrylics, polyethylene, polypropylene, polyurethane and co:block polymers of these.
[0036] The overarching intent for the present invention is to remove and replace an air optical interface within the optical region of an intra-ocular lens as required to allow the human eye to recover its inherent ability to efficiently and predictably shift focus from distance to near and all points between.
[0037] While a number of exemplary aspects and embodiments have been discussed above, those of skill in the art will recognize certain modifications, permutations, additions and sub-combinations thereof. For example while air has been described as the fluid contained in the compartment 18, other transparent gases or liquids could be substituted with resulting variation in the refractive indices. It is therefore intended that the following appended claims and claims hereafter introduced are interpreted to include all such modifications, permutations, additions and sub-combinations as are consistent with the broadest interpretation of the specification as a whole.