IP Library › Granted Patent US 9,855,136
Granted Patent B2
US 9,855,136 · App. 14/372,245 · Granted Jan 2, 2018

Posterior chamber intraocular lens

Inventor: Zhao Wang (Beijing, CN)
Assignee: EYEBRIGHT MEDICAL TECHNOLOGY (BEIJING) CO., LTD.
A61F2/1624A61F2/16A61F2/161A61F2/1613A61F2/1629A61F2/164A61F2/1618A61F2002/0091
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Quick Facts
Patent No.
US 9,855,136
App. No.
14/372,245
Granted
Jan 2, 2018
Kind
B2
Abstract

The present invention relates to a posterior chamber intraocular lens (IOL), comprising: an optic consisting of an effective optical area and an effective optical area edge; at least two haptics connected to the optic, wherein a posterior surface of the effective optical area is a convex surface, and a basic spherical surface thereof has a radius of curvature in a range of 6.6 mm-80.0 mm. The effective optical area of the posterior chamber IOL adopts a design with the posterior surface obviously convex, which reduces the distance between the posterior surface of the effective optical area of the IOL and the posterior capsule, improves the stability of a spatial position of the IOL in a capsule bag, and reduces an incidence rate of posterior capsule opacification (PCO) after implantation of the IOL; since the effective optical area anterior surface is relatively flat, the IOL haptics will not be tightly pressed on the effective optical area anterior surface upon folding, the haptics are more easily unfolded after implantation into the eye and the support haptics are not mutually adhered to the effective optical area, and meanwhile the IOL imaging quality can be improved and/or the visual quality of the astigmatism sufferer is enhanced.

Claims (15)

1. A posterior chamber intraocular lens (IOL) comprising:

an optic consisting of an effective optical area and an effective optical area edge disposed around the effective optical area;

at least two haptics symmetrically connected to the optic around a circumferential direction of the optic, the at least two haptics selected from the group consisting of L-shaped haptics and C-shaped haptics,

wherein:

an anterior optical surface of the effective optical area is a convex surface, and a basic spherical surface thereof has a radius of curvature in a range of 14.4 mm to 74.0 mm,

a posterior optical surface of the effective optical area is a convex aspherical surface, and a basic spherical surface thereof has a radius of curvature in a range of 7.2 mm to 15.3 mm, and the radius of curvature of the basic spherical surface of the posterior optical surface of the effective optical area is smaller than the radius of curvature of the anterior optical surface of the effective optical area,

wherein the radius of curvature of the basic spherical surface of the posterior optical surface of the effective optical area is 17.8%-60.0% of the radius of curvature of the anterior optical surface of the effective optical area,

wherein the posterior chamber intraocular lens comprises hydrophobic acrylate having a refractive index of 1.47-1.55,

wherein roots of the haptics are directly connected to the effective optical area edge of the optic,

wherein the effective optical area edge further comprises a sharp bend dimensioned and configured to press tightly against the posterior capsule membrane of the eye,

wherein the convex aspherical surface of the posterior optical surface comprises a high order aspherical surface design in order to correct spherical aberration and high order aberrations, and to further improve the imaging quality of the basic spherical surface, and

wherein substantially the entirety of the posterior optical surface of the effective optical area is dimensioned and configured to be in direct close contact with the posterior capsule membrane of the eye to improve the stability of a spatial position of the IOL in the capsule bag and also to reduce incidence rate of posterior capsule opacification (PCO) after implantation of the IOL into the human eye.

2. The posterior chamber IOL according to claim 1 , wherein the radius of curvature of the basic spherical surface of the posterior optical surface of the effective optical area is 20.0%-45.6% of the radius of curvature of the anterior optical surface of the effective optical area.

3. The posterior chamber IOL according to claim 1 , wherein a longitudinal center line of the haptic roots is at a haptic angle in a range of 0°-7° relative to a longitudinal center line of the optic.

4. The posterior chamber IOL according to claim 1 , wherein the surface shape of an the anterior optical surface of the effective optical area comprises one of spherical surface, aspherical surface, toric surface, multi-focal surface of multi-area refraction design and multi-focal surface of multi-area diffraction design.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 1, 2014
From: WANG, ZHAO
To: EYEBRIGHT MEDICAL TECHNOLOGY (BEIJING) CO., LTD.
Reel/Frame 033442/0450 →
Priority Claims (3)
CN 2012 1 0017055 · Jan 19, 2012 · national
CN 2012 1 0017070 · Jan 19, 2012 · national
CN 2012 1 0335578 · Sep 12, 2012 · national
Continuity (1)
Related Publication 20140358225A1 · Dec 4, 2014