Polymeric composition exhibiting nanogradient of refractive index
Ionized radiation-absorbed, dose sensitive, highly flexible polymeric compositions are provided that exhibits multidirectional changes in refractive index. Also provided are methods of producing a precision multi-directional nanogradient of refractive index in a polymeric composition.
1. An intraocular lens (IOL), comprising:
an optic body made from a copolymer having a three-dimensional polymeric matrix, wherein the three-dimensional polymeric matrix of the copolymer has a non-uniform cross-link density and includes a first region with fewer cross links than a second region,
wherein the optic body in an optic body of an intraocular lens, and wherein said optic body is already-formed (cured),
wherein the non-uniform cross-link density of the three-dimensional polymeric matrix is achieved by irradiating the already-formed optic body with ionizing energy in a specific pattern across the optic body to break cross-linked bonds,
wherein the irradiated optic body is subsequently positioned in a hydrating solution, and the three-dimensional polymeric matrix is swollen in a non-uniform manner as a result of being positioned in the hydrating solution, the optic body having a non-uniform refractive index as a result of the swelling of the three-dimensional polymeric matrix,
wherein the non-uniform cross-link density adapts the optic body, when placed in an eye and exposed to aqueous humour, to focus light from a wide range of distances without moving or changing shape.
2. The lens of claim 1 , wherein the three-dimensional polymeric matrix is dimensionally stable through steam sterilization and is hydrolytically stable during long term use.
3. The lens of claim 1 , wherein the non-uniform cross-link density adapts the optic body, when placed in an eye and exposed to aqueous humour, to focus light from a wide range of distances without moving or changing shape with a vergence of 0 to 3D.
4. The lens of claim 3 , wherein the non-uniform cross-link density adapts the optic body, when placed in an eye and exposed to aqueous humour, to focus light from a wide range of distances without moving or changing shape with a vergence of 0 to 2.5 D.
5. The lens of claim 4 , wherein the non-uniform cross-link density adapts the optic body, when placed in an eye and exposed to aqueous humour, to focus light from a wide range of distances without moving or changing shape with a vergence of 0 to 2 D.
6. The lens of claim 5 , wherein the non-uniform cross-link density adapts the optic body, when placed in an eye and exposed to aqueous humour, to focus light from a wide range of distances without moving or changing shape with a vergence of 0 to 1.5 D.
7. The lens of claim 6 , wherein the non-uniform cross-link density adapts the optic body, when placed in an eye and exposed to aqueous humour, to focus light from a wide range of distances without moving or changing shape with a vergence of 0 to 1 D.
8. The lens of claim 1 , wherein the non-uniform cross-link density adapts the optic body, when placed in an eye and exposed to aqueous humour, to correct for astigmatism.
9. The lens of claim 1 , wherein the three-dimensional polymeric matrix has a lower cross-link density near a surface of the optic body than in a region further inward relative to the surface.
10. The lens of claim 1 , wherein the lens further comprises a non-optic haptic portion, and wherein the non-optic haptic portion includes a non-optic three-dimensional polymeric matrix, wherein the non-optic three-dimensional polymeric matrix has a non-uniform cross-link density.
11. The lens of claim 1 , wherein the hydrating solution comprises a balanced salt solution.
12. The lens of claim 1 , wherein the non-uniform cross-link density adapts the optic body, when placed in an eye and exposed to aqueous humour, to be a spherical lens for spherical correction.