Intraocular lens platform with improved haptic force distribution - Patents.com
The IOL design with gusset and tip regions enhances haptic force distribution, reducing striae and enabling smaller incisions for improved patient outcomes and stability.
Patent Information
- Application Number
- JP2023144230
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2017-12-18
- Filing Date
- 2023-09-06
- Publication Date
- 2026-01-30
- Estimated Expiration
- 2038-12-18
AI Technical Summary
Existing intraocular lenses (IOLs) suffer from haptic designs that cause striae in the posterior lens capsule, leading to issues like secondary cataract (PCO) and require larger incisions, compromising patient recovery and stability.
The IOL design features haptics with a gusset region that increases in thickness and a tip region that decreases in thickness, providing a larger contact angle and improved uniform force distribution, reducing striae while maintaining axial and rotational stability.
The new IOL design reduces posterior lens capsule folds and maintains stability, facilitating smaller incisions and minimizing complications during implantation.
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Abstract
Description
[Technical Field]
[0001] FIELD OF THE DISCLOSURE The present disclosure relates generally to ophthalmic lenses, and more particularly to an intraocular lens platform with improved haptic force distribution. [Background technology]
[0002] In its simplest form, the human eye functions to provide vision by transmitting light through a clear outer portion called the cornea and focusing the image onto the retina by the lens. The quality of the focused image is determined by many factors, including the size and shape of the eyeball and the transparency of the cornea and lens. As age or disease reduces the transparency of the lens, vision is impaired because a reduced amount of light can be transmitted to the retina. This defect in the eye's lens is medically known as a cataract. The accepted treatment for this condition is surgical removal of the lens and replacing its function with an intraocular lens (IOL).
[0003] An IOL typically includes (1) an optic, which corrects a patient's vision (e.g., typically via refraction or diffraction), and (2) haptics, which comprise a support structure that holds the optic in place within the patient's eye (e.g., within the capsular bag). Generally, a physician selects an IOL whose optic has appropriate corrective characteristics for the patient. During a surgical procedure, the surgeon can implant the selected IOL by forming an incision (capsulorhexis) in the capsular bag of the patient's eye and inserting the IOL through the incision. Typically, the IOL is folded for insertion into the capsular bag through a corneal incision and then unfolded once in place within the capsular bag. During unfolding, the haptics can expand so that each small portion contacts the capsular bag to hold the IOL in place. Summary of the Invention [Problem to be solved by the invention]
[0004] While existing IOLs can perform acceptably well in many patients, they also suffer from several drawbacks. For example, existing IOL designs can include haptics that introduce striae or folds into the posterior lens capsule. These striae can result from the haptics having a relatively small contact angle with the lens capsule, which can result in uneven force distribution around the periphery of the lens capsule. Because striae can adversely affect patient outcomes (e.g., by providing a mechanism for cellular proliferation and / or migration, leading to increased secondary cataract (PCO, posterior capsule opacification)), haptic designs that reduce striae are desirable. Furthermore, because larger incisions can adversely affect patient recovery, such designs should also possess volume and foldability that contribute to maintaining an acceptably small incision size.
[0005] Therefore, what is needed is an IOL with a haptic design that reduces striae (thereby addressing one cause of PCO) without adversely affecting rotational or axial stability or significantly complicating implantation. [Means for solving the problem]
[0006] In some embodiments, the ophthalmic lens includes an optic having an anterior surface, a posterior surface, and an optic edge extending between the anterior surface and the posterior surface, the optic having an optical axis. The ophthalmic lens further includes a plurality of haptics extending from a periphery of the optic, each of the plurality of haptics including a gusset region, a tip region, and an elbow region connecting the gusset region to the tip region. The gusset region of each of the plurality of haptics extends from the periphery of the optic and spans a portion of the periphery of the optic. Furthermore, the gusset region of each of the plurality of haptics monotonically increases in thickness with increasing distance from the periphery of the optic, and the tip region of each of the plurality of haptics monotonically decreases in thickness with increasing distance from the elbow region.
[0007] In some embodiments, the present disclosure may provide one or more technical advantages. For example, the IOL platforms described herein may improve the uniformity of haptic force distribution, thereby reducing posterior lens capsule folds (striations) while maintaining axial and rotational stability across most capsule sizes. More specifically, the IOL platforms described herein may improve the uniformity of haptic force distribution by providing a larger contact angle (in some embodiments, greater than 50 degrees) compared to current single-piece IOLs (which may have contact angles in the 40-45 degree range).
[0008] For a more complete understanding of the present disclosure and its advantages, reference is now made to the following description taken in conjunction with the accompanying drawings, in which like reference numerals indicate like features and in which:
[0009] Those skilled in the art will appreciate that the drawings, described below, are for illustrative purposes only and are not intended to limit the scope of applicant's disclosure in any way. [Brief explanation of the drawings]
[0010] [Figure 1] 1 illustrates a top view of an exemplary ophthalmic lens according to some embodiments of the present disclosure. [Figure 2] 2 illustrates a cross-sectional view of the optic portion of the exemplary ophthalmic lens shown in FIG. 1 (taken along line AA in FIG. 1). [Figure 3] 2 illustrates a detailed view of the optic edge of the exemplary ophthalmic lens shown in FIG. 1. [Figure 4] 2 illustrates a cross-sectional view of a haptic of an exemplary ophthalmic lens shown in FIG. 1 (along line BB of FIG. 1). [Figure 5] 2 illustrates a cross-sectional view of the optic and haptics of the exemplary ophthalmic lens shown in FIG. 1 (taken along line CC in FIG. 1). [Figure 6] 2 illustrates a detailed cross-sectional view of the optic and haptics of the exemplary ophthalmic lens shown in FIG. 1. [Figure 7]2 illustrates a detailed view of the gusset region of the exemplary ophthalmic lens shown in FIG. 1. DETAILED DESCRIPTION OF THE INVENTION
[0011] Generally, the present disclosure relates to an ophthalmic lens (e.g., an IOL) that is rotationally and axially stable and reduces the occurrence of striae in the posterior lens capsule. More specifically, the present disclosure provides an ophthalmic lens including an optic having an anterior surface, a posterior surface, and an optic edge extending between the anterior surface and the posterior surface, the optic having an optical axis. The ophthalmic lens further includes a plurality of haptics extending from a peripheral edge of the optic, each of the plurality of haptics including a gusset region, a tip region, and an elbow region connecting the gusset region to the tip region. The gusset region of each of the plurality of haptics extends from the peripheral edge of the optic and spans a portion of the peripheral edge of the optic. Furthermore, the gusset region of each of the plurality of haptics monotonically increases in thickness with increasing distance from the peripheral edge of the optic, and the tip region of each of the plurality of haptics monotonically decreases in thickness with increasing distance from the elbow region.
[0012] 1-7 illustrate various views of an ophthalmic lens 100 (hereinafter referred to as IOL 100) according to some embodiments of the present disclosure. The IOL 100 may include an optic 102 and a number of haptics 104. In particular, FIG. 1 illustrates a top view of the IOL 100, FIG. 2 illustrates a cross-sectional view of the optic 102 of 100 (along line AA in FIG. 1), FIG. 3 illustrates a detailed view of the optic edge 114 of the IOL 100, FIG. 4 illustrates a cross-sectional view of the haptics 104 of the IOL 100 (along line BB in FIG. 1), FIG. 5 illustrates a cross-sectional view of the optic 102 and haptics 104 of the IOL 100 (along line CC in FIG. 1), FIG. 6 illustrates a detailed cross-sectional view of the optic 102 and haptics 104 of the IOL 100, and FIG. 7 illustrates a detailed view of the gusset region 126 of the IOL 100.
[0013] IOL 100 can have an overall diameter 106 of 10 mm to 15 mm. In some embodiments, overall diameter 106 can be approximately 13.5 mm. Although FIG. 1 shows IOL 100 with two haptics 104 (104a and 104b) that define overall diameter 106, the present disclosure contemplates that IOL 100 can have any suitable number of haptics.
[0014] The optic 102 may include an anterior surface 108, a posterior surface 110, an optical axis 112, and an optic edge 114. The anterior and / or posterior surfaces may have any suitable surface profile for correcting the patient's vision. For example, the anterior and / or posterior surfaces 108 may be spherical, aspherical, toric, refractive, diffractive, or any suitable combination thereof. In other words, the optic 102 may be one or more of a spherical lens, an aspherical lens, a toric lens, a multifocal lens (refractive or diffractive), an extended depth of focus lens, or any other suitable type of lens.
[0015] The anterior surface 108 can have an anterior surface diameter 116 of 4.5 mm to 7.0 mm. In one specific embodiment, the anterior surface diameter 116 can be approximately 6 mm. Additionally, the anterior surface 108 can include a full optic, meaning that the optic portion of the anterior surface 108 extends to the optic edge 114. Alternatively, the anterior surface 108 can include one or more transition regions (not shown) between the edge of the optic region of the anterior surface 108 and the optic edge 114.
[0016] The posterior surface 110 can have a posterior diameter 118 between 4.5 mm and 7.0 mm. In one specific embodiment, the posterior diameter 118 can be approximately 6.15 mm (or can vary within a range including 6.15 mm, depending on the lens power). Additionally, the posterior surface 108 can include an optic portion 120 (as best shown in FIG. 3 ) and a transition portion 122 located between the optic portion 120 and the optic edge 114. Alternatively, the posterior surface 110 can include a full optic, meaning that the optic portion of the posterior surface 110 extends to the optic edge 114.
[0017] In embodiments in which the posterior surface 108 comprises an optic portion 120 and a transition portion 122, and the posterior surface diameter 118 is approximately 6.15 mm, the optic portion 120 of the posterior surface 110 can have a diameter of approximately 6 mm. The transition portion 122 can include one or more curved surfaces, one or more flat surfaces, or any suitable combination thereof. In some embodiments, the intersection of the transition portion 122 and the optic edge 114 can form an approximately 90-degree angle 124.
[0018] The optic edge 114 can extend between the anterior surface 108 and the posterior surface 110 and can include one or more curved surfaces, one or more flat surfaces, or any suitable combination thereof. In one specific embodiment, the optic edge 114 can include a continuous curved surface extending between the anterior surface 108 and the posterior surface 110. In such an embodiment, the continuous curved surface can be free of any tangents parallel to the optical axis 112, which can advantageously reduce the occurrence of positive dysphotopsia consequences, at least in part, from edge glare.
[0019] The haptics 104 can each include a gusset region 126, an elbow region 128, and a tip region 130. The gusset region 126 can extend from the periphery of the optic 102 and can subtend an angle 132 at the periphery of the optic 102. In some embodiments, the angle 132 can be 50 degrees or greater. In some other embodiments, the angle 132 can be 60 degrees or greater. In other embodiments, the angle 132 can be 70 degrees or greater. In one specific embodiment, the angle 132 can be approximately equal to 70 degrees.
[0020] In some embodiments, the overall thickness of each gusset region 126 can increase monotonically with increasing distance from the optical axis 112 (as best shown in FIGS. 5 and 6 ). In other words, each gusset region 126 can have a minimum thickness at the point of connection to the periphery of the optic 102, and the thickness can increase monotonically between the periphery of the optic 102 and the elbow region 128. For example, the gusset region 126 can have a minimum thickness at the periphery of the optic of between 0.16 mm and 0.40 mm. As another example, the gusset region 126 can have a minimum thickness at the periphery of the optic of between 0.20 mm and 0.35 mm. As another example, the gusset region 126 can have a minimum thickness at the periphery of the optic of about 0.25 mm (for an IOL 100 with a relatively low optical power) or about 0.35 mm (for an IOL 100 with a relatively high optical power).
[0021] In alternative embodiments, the overall thickness of each gusset region 126 can increase monotonically over only a portion of the gusset region 126. In other words, the gusset region 126 can increase monotonically in thickness over a first range of distances from the optical axis 112 and can have a constant or decreasing thickness (or a combination thereof) over a second range of distances from the optical axis 112.
[0022] The elbow region 128 can include the portion of the haptics 104 having the smallest width. For example, the width 134 of the elbow region 128 can be between 0.40 mm and 0.65 mm. As another example, the width 134 of the elbow region 128 can be approximately 0.50 mm. As a result of the elbow region 128 including the portion of the haptics 104 having the smallest width, the elbow region 128 can provide a hinge that allows the haptics 104 to flex while minimizing buckling and bending of the optic 102.
[0023] The tip region 130 can extend from the elbow region 128 and can have a length 136 in the range of 6 mm to 7.5 mm. In some embodiments, the tip region 130 can have a length 136 in the range of 6.5 mm to 7 mm. In one particular embodiment, the tip region 130 can have a length 136 of approximately 6.8 mm.
[0024] In some embodiments, the distal region 130 varies in width along its length 136. In one particular embodiment, the distal region 130 can have a maximum width 138, or approximately 0.90 mm, and a minimum width 140 of approximately 0.65 mm. Additionally, the width of the distal region 130 can vary between the posterior surface of the haptic 104 and the anterior surface of the haptic 104. For example, as shown in FIG. 4, the posterior surface of the haptic 105 can be wider than the anterior surface, in which case the widths discussed above refer to the width at the wider posterior surface. While both the anterior and posterior surfaces of the haptic 104 are shown as being substantially flat in FIG. 4, the present disclosure contemplates that in some embodiments, one or both of the anterior and posterior surfaces of the haptic 104 can have a curvature. In such embodiments, the surface area of the haptics 104 that contacts the optic 102 or each other when the IOL 100 is folded for delivery can be reduced, thereby reducing the incidence of the haptics 104 sticking to the optic 102 or each other after delivery, which can result in improved unfolding behavior.
[0025] In some embodiments, the overall thickness of each tip region 130 can decrease monotonically with increasing distance from the elbow region 128. In other words, the thickness of the tip region 130 of each haptic 104 can decrease monotonically along its length 136. For example, the tip region 130 can have a maximum thickness adjacent the elbow region 128 of between 0.33 mm and 0.57 mm. As another example, the tip region 130 can have a maximum thickness adjacent the elbow region 128 of between 0.37 mm and 0.53 mm. As another example, the tip region 130 can have a maximum thickness adjacent the elbow region 128 of approximately 0.47 mm. From the point of maximum thickness, the tip region 130 can have a linear thickness decrease with increasing distance from the optical axis 112 (resulting in a nonlinear decrease in thickness along the length 136 of the tip region 130). In one particular example, the thickness of the tip region 130 can be reduced such that, in cross section (see FIG. 5), the front surface of the tip region 130 slopes at an angle of about 3 degrees. Alternatively, from a point of maximum thickness, the tip region 130 can have a non-linear thickness reduction with increasing distance from the optical axis 112.
[0026] In alternative embodiments, the overall thickness of each tip region 130 can decrease monotonically over only a portion of the tip region 130. In other words, the tip region 130 can decrease monotonically in thickness over a first range of distances from the elbow region 128 and can have a constant or increasing thickness (or a combination thereof) over a second range of distances from the elbow region 128.
[0027] The above-described configuration of the haptics 104 can provide one or more technical advantages. For example, the above-described configuration of the haptics 104 can improve the uniformity of haptic force distribution, thereby reducing posterior lens capsule folds (striations) while maintaining axial and rotational stability across most capsule sizes. More specifically, the above-described configuration of the haptics 104 can improve the uniformity of haptic force distribution by providing a larger contact angle (in some embodiments, greater than 50 degrees) compared to current single-piece IOLs (which may have contact angles in the range of 40-45 degrees). Furthermore, the differential thickness of various regions of the haptics 104 can provide desired stability while minimizing volume, thereby facilitating smaller incision sizes.
[0028] In some embodiments, all or a portion of the haptics 104 can have a textured surface. A textured haptic surface can reduce the occurrence of the haptics 104 sticking to the optic 102 during delivery. Additionally, texture at the optic edge 114 can reduce or minimize edge glare by diffusing unwanted light from edge reflection or transmission, thereby reducing the incidence of positive dysphotopsia.
[0029] Various techniques and materials can be employed to manufacture the above-described IOL 100. For example, the optic 102 of the IOL 100 can be formed from various biocompatible polymeric materials. Some suitable biocompatible materials include, without limitation, soft acrylic polymeric materials, hydrogel materials, copolymer materials including polymethymethacrylate, polysulfone, or polystyrene, or other biocompatible materials. By way of example, in one embodiment, the optic 102 can be formed from a soft acrylic hydrophobic copolymer, such as those described in U.S. Pat. Nos. 5,290,892, 5,693,095, 8,449,610, or 8,969,429. The haptics 104 of the IOL 100 can also be formed from suitable biocompatible materials, such as those disclosed above. In some cases, the optic 102 and haptics 104 of the IOL can be manufactured as an integral unit, but in other cases they can be formed separately and joined together using techniques known in the art.
[0030] It will be appreciated that various of the above-disclosed and other features and functions, or alternatives thereof, can be desirably combined into many other different systems or applications. It will also be appreciated that various presently unforeseen or unanticipated alternatives, modifications, variations, or improvements therein may be subsequently made by those skilled in the art and that such alternatives, modifications, and improvements are also intended to be encompassed by the following claims. According to aspect (1), an optical portion having an anterior surface, a posterior surface, and an optical portion edge extending between the anterior surface and the posterior surface, the optical portion having an optical axis; a haptic extending from a periphery of the optic and comprising an anterior haptic surface and a posterior haptic surface, wherein for at least a portion of the haptic, a width of the posterior haptic surface is greater than a width of the anterior haptic surface, the haptic further comprising a gusset region, a tip region, and an elbow region connecting the gusset region to the tip region; the gusset region of the haptic extends from and spans a portion of the periphery of the optic; the gusset region of the haptics increases in thickness with increasing distance from the periphery of the optic over at least a portion of the gusset region; the tip region of the support portion decreases in thickness over at least a portion of the tip region with increasing distance from the elbow region; A support part; An ophthalmic lens comprising: According to aspect (2), the elbow region of the support portion includes a region of the support portion having a minimum support portion width. According to the third aspect, at least a part of the surface of the support portion is uneven. According to aspect (4), one or both of the support portion front surface and the support portion rear surface have a curvature. According to aspect (5), the thickness of the tip region of the support portion decreases linearly as the distance from the optical axis increases. According to aspect (6), the tip region of the support portion has a thickness that decreases nonlinearly as the distance from the elbow region increases. According to aspect (7), the tip region of the support portion has a portion whose thickness is constant or increases as the distance from the elbow region increases. According to aspect (8), the thickness of the gusset region of the support portion increases linearly as the distance from the peripheral edge portion of the optical portion increases. According to aspect (9), the thickness of the gusset region of the support portion increases nonlinearly as the distance from the peripheral edge portion of the optical portion increases. According to aspect (10), the gusset region of the support portion has a portion whose thickness is constant or decreases as the distance from the elbow region increases. According to aspect (11), there is provided a cataract surgery system including an optic having an anterior surface, a posterior surface, and an optic edge extending between the anterior surface and the posterior surface, the optic having an optical axis; a haptic extending from a periphery of the optic, the haptic comprising a gusset region, a tip region, and an elbow region connecting the gusset region to the tip region; the gusset region of the haptic extends from and spans a portion of the periphery of the optic; the gusset region of the haptics increases in thickness with increasing distance from the periphery of the optic over at least a portion of the gusset region; the tip region of the support has a thickness that decreases linearly with increasing distance from the optical axis over at least a portion of the tip region; A support part; An ophthalmic lens comprising: According to aspect (12), the elbow region of the support portion includes a region of the support portion having a minimum support portion width. According to aspect (13), at least a part of the surface of the support part is uneven. According to aspect (14), the gusset region of the support portion has a thickness that increases linearly with increasing distance from the peripheral edge of the optical portion. According to aspect (15), the thickness of the gusset region of the support portion increases nonlinearly as the distance from the peripheral edge of the optical portion increases. According to aspect (16), the gusset region of the support portion has a portion whose thickness is constant or decreases as the distance from the elbow region increases. According to aspect (17), there is provided a method for cataract surgery using a cataract optic, the method comprising: providing an optic having an anterior surface, a posterior surface, and an optic edge extending between the anterior surface and the posterior surface, the optic having an optical axis; a haptic extending from a periphery of the optic, the haptic comprising a gusset region, a tip region, and an elbow region connecting the gusset region to the tip region; the gusset region of the haptic extends from and spans a portion of the periphery of the optic; the gusset region of the haptics increases in thickness linearly with increasing distance from the periphery of the optic over at least a portion of the gusset region; the tip region of the support portion decreases in thickness over at least a portion of the tip region with increasing distance from the elbow region; A support part; An ophthalmic lens comprising: According to aspect (18), the tip region of the support has a thickness that decreases linearly as the distance from the optical axis increases. According to aspect (19), the tip region of the support portion has a thickness that decreases nonlinearly as the distance from the elbow region increases. According to aspect (20), the tip region of the support portion has a portion whose thickness is constant or increases as the distance from the elbow region increases. According to aspect (21), there is provided a method for cataract surgery using a cataract optic, the method comprising: providing an optic having an anterior surface, a posterior surface, and an optic edge extending between the anterior surface and the posterior surface, the optic having an optical axis; a plurality of fenestrated haptics extending from a peripheral edge of the optic at a gusset region, each of the plurality of haptics comprising the gusset region, a tip region, and an elbow region connecting the gusset region to the tip region; the gusset region of each of the plurality of haptics spans at least 70 degrees of the periphery of the optic; the tip region of each of the plurality of supports has a thickness that monotonically decreases with increasing distance from the elbow region along the entire length of the tip region, the tip region of each of the plurality of supports including a terminal region; At least a portion of the surface of each of the plurality of support parts is uneven. A plurality of supports; An ophthalmic lens comprising: According to aspect (22), the optical edge defines an edge surface having a single radius of curvature, and the edge surface does not have a tangent parallel to the optical axis. According to aspect (23), each of the plurality of supports has a support front surface and a support rear surface, and for at least a portion of each of the plurality of supports, the width of the support rear surface is greater than the width of the support front surface, and the width of the support rear surface and the width of the support front surface are defined in a direction perpendicular to the optical axis.
Claims
1. an optic having an anterior surface, a posterior surface, and an optic edge extending between the anterior surface and the posterior surface, the optic having an optical axis; a haptic extending from a periphery of the optic and comprising an anterior haptic surface and a posterior haptic surface, wherein for at least a portion of the haptic, a width of the posterior haptic surface is greater than a width of the anterior haptic surface, the haptic further comprising a gusset region, a tip region, and an elbow region connecting the gusset region to the tip region; the gusset region of the haptic extends from and spans a portion of the periphery of the optic; the gusset region of the haptics increases in thickness with increasing distance from the periphery of the optic over at least a portion of the gusset region; the tip region of the support portion decreases in thickness over at least a portion of the tip region with increasing distance from the elbow region; At least one of the anterior haptic surface and the posterior haptic surface has a curvature that forms a convex surface such that a surface area of the haptic in contact with the optic is reduced when the intraocular lens (IOL) is folded for delivery. The support portion; An ophthalmic lens comprising:
2. The ophthalmic lens of claim 1 , wherein the elbow region of the haptic comprises a region of the haptic having a minimum haptic width.
3. The ophthalmic lens of claim 1 , wherein the distal regions of the haptics decrease in thickness linearly with increasing distance from the optical axis.
4. The ophthalmic lens of claim 3 , wherein the tip region of the haptic decreases in thickness non-linearly with increasing distance from the elbow region.
5. The ophthalmic lens of claim 1 , wherein the tip region of the haptic has a portion whose thickness is constant or increases with increasing distance from the elbow region.
6. The ophthalmic lens of claim 1 , wherein the gusset regions of the haptics increase in thickness linearly with increasing distance from the periphery of the optic.
7. The ophthalmic lens of claim 1 , wherein the gusset regions of the haptics increase in thickness non-linearly with increasing distance from the periphery of the optic.
8. The ophthalmic lens of claim 1 , wherein the gusset region of the haptic has a portion that has a constant or decreasing thickness with increasing distance from the elbow region.
9. an optic having an anterior surface, a posterior surface, and an optic edge extending between the anterior surface and the posterior surface, the optic having an optical axis; a haptic extending from a peripheral edge of the optical portion and comprising an anterior haptic surface and a posterior haptic surface, the haptic further comprising a gusset region, a tip region, and an elbow region connecting the gusset region to the tip region; the gusset region of the haptic extends from and spans a portion of the periphery of the optic; the gusset region of the haptics increases in thickness with increasing distance from the periphery of the optic over at least a portion of the gusset region; the distal region of the haptic having a thickness that decreases linearly with increasing distance from the optical axis over at least a portion of the distal region; At least one of the anterior haptic surface and the posterior haptic surface has a curvature that forms a convex surface such that a surface area of the haptic in contact with the optic is reduced when the intraocular lens (IOL) is folded for delivery. The support portion; An ophthalmic lens comprising:
10. 10. The ophthalmic lens of claim 9, wherein the elbow region of the haptic comprises a region of the haptic having a minimum haptic width.
11. 10. The ophthalmic lens of claim 9, wherein the gusset regions of the haptics increase in thickness linearly with increasing distance from the periphery of the optic.
12. 10. The ophthalmic lens of claim 9, wherein the gusset regions of the haptics increase in thickness non-linearly with increasing distance from the periphery of the optic.
13. 10. The ophthalmic lens of claim 9, wherein the gusset region of the haptic has a portion that has a constant or decreasing thickness with increasing distance from the elbow region.
14. an optic having an anterior surface, a posterior surface, and an optic edge extending between the anterior surface and the posterior surface, the optic having an optical axis; a haptic extending from a peripheral edge of the optic and comprising an anterior haptic surface and a posterior haptic surface, the haptic comprising a gusset region, a tip region, and an elbow region connecting the gusset region to the tip region; the gusset region of the haptic extends from and spans a portion of the periphery of the optic; the gusset region of the haptics increases in thickness linearly with increasing distance from the periphery of the optic over at least a portion of the gusset region; the tip region of the support portion decreases in thickness over at least a portion of the tip region with increasing distance from the elbow region; the support front surface and the support rear surface have corresponding widths; At least one of the anterior haptic surface and the posterior haptic surface has a curvature that forms a convex surface such that a surface area of the haptic in contact with the optic is reduced when the intraocular lens (IOL) is folded for delivery. The support portion; An ophthalmic lens comprising:
15. 15. The ophthalmic lens of claim 14, wherein the distal regions of the haptics decrease in thickness linearly with increasing distance from the optical axis.
16. 16. The ophthalmic lens of claim 15, wherein the tip region of the haptic decreases in thickness non-linearly with increasing distance from the elbow region.
17. 15. The ophthalmic lens of claim 14, wherein the tip region of the haptic has a portion that has a constant or increasing thickness with increasing distance from the elbow region.
18. an optic having an anterior surface, a posterior surface, and an optic edge extending between the anterior surface and the posterior surface, the optic having an optical axis; a plurality of windowless haptics extending from a peripheral edge of the optic at a gusset region, the haptics comprising an anterior haptic surface and a posterior haptic surface, each of the plurality of haptics further comprising the gusset region, a tip region, and an elbow region connecting the gusset region to the tip region; the gusset region of each of the plurality of haptics spans at least 70 degrees of the periphery of the optic; the tip region of each of the plurality of supports has a thickness that monotonically decreases with increasing distance from the elbow region along the entire length of the tip region, the tip region of each of the plurality of supports including a terminal region; At least a portion of the surface of each of the plurality of support parts is uneven, the support front surface and the support rear surface have corresponding widths; At least one of the anterior haptic surface and the posterior haptic surface has a curvature that forms a convex surface such that a surface area of the haptic in contact with the optic is reduced when the intraocular lens (IOL) is folded for delivery. the plurality of support portions; An ophthalmic lens comprising:
19. 19. The ophthalmic lens of claim 18, wherein the optical zone edge defines an edge surface having a single radius of curvature, the edge surface having no tangents parallel to the optical axis.
20. The ophthalmic lens of claim 18 , wherein the width of the posterior haptic surface and the width of the anterior haptic surface are defined in a direction perpendicular to the optical axis.
Citation Information
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