Vision correction with laser refractive index changes

US10932901B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10932901-B2
Application numberUS-201815892987-A
CountryUS
Kind codeB2
Filing dateFeb 9, 2018
Priority dateFeb 10, 2017
Publication dateMar 2, 2021
Grant dateMar 2, 2021

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Abstract

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Methods and systems wherein laser induced refractive index changes by focused femtosecond laser pulses in optical polymeric materials or optical tissues is performed to address various types of vision correction.

First claim

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We claim: 1. An optical device selected from a contact lens, intraocular lens, or corneal inlay for improving visual performance in a patient, including central optical and outer peripheral zones comprising an optical polymer material, wherein select regions of the optical device in the central and outer zones have been irradiated with a focused, visible or near-IR laser below the optical breakdown threshold of the optical polymer material to provide refractive structures that exhibit a change in refractive index, and exhibit little or no scattering loss, and wherein ablation or removal of the optical polymeric material is not observed in the irradiated regions, wherein laser-irradiated refractive structures provided in the central optical zone of the optical device provide one or more of the following when the optical device is employed by a patient: extended depth of focus by inducing a higher order aberration; diffractive multifocal; refractive multifocal; chromatic aberration correction; higher order aberration corrections; binocular monovision; rotationally symmetric or asymmetric single ring; or custom corrections; and further wherein laser-irradiated refractive structures provided in the peripheral zone of the optical device provide a region of altered refractive index to reduce glare, halo, edge effects or dysphotopsias. 2. An optical device according to claim 1 , wherein the optical device is an intraocular lens. 3. An optical device according to claim 2 , wherein refractive structures provided in the peripheral zone of the optical device provide a region of altered refractive index to reduce glare or halo effects caused by edges of the intraocular lens. 4. An optical device selected from a contact lens, intraocular lens, or corneal inlay for improving visual performance in a patient, including central optical and outer peripheral zones comprising an optical polymer material, wherein select regions of the optical device in the central and outer zones have been irradiated with a focused, visible or near-IR laser below the optical breakdown threshold of the optical polymer material to provide refractive structures that exhibit a change in refractive index, and exhibit little or no scattering loss, and wherein ablation or removal of the optical polymeric material is not observed in the irradiated regions, wherein laser-irradiated refractive structures provided in the central optical zone of the optical device provide one or more of the following when the optical device is employed by a patient: extended depth of focus by inducing a higher order aberration; diffractive multifocal; refractive multifocal; chromatic aberration correction; higher order aberration corrections; binocular monovision; rotationally symmetric or asymmetric single ring; or custom corrections; further wherein the optical device is an intraocular lens and the laser-irradiated refractive structures provided in the peripheral zone of the optical device provide a region of altered refractive index to reduce glare or halo effects caused by edges of the intraocular lens; and wherein refractive structures provided in the peripheral zone of the optical device comprise a refractive index GRIN layer added to the lens inside the periphery of the lens having a decreasing refractive index with increasing distance from the optical axis of the lens. 5. An optical device according to claim 4 , wherein refractive structures provided in the peripheral zone of the optical device reduce the refractive index of the polymer material to at or near the refractive index of surrounding aqueous fluid in use of the device in order to reduce internal reflections inside the lens that cause glare or halo effects. 6. An optical device according to claim 1 , wherein the optical device is a contact lens. 7. An optical device according to claim 6 , wherein refractive structures provided in the peripheral zone expand peripheral vision. 8. A method for modifying an optical device selected from a contact lens, intraocular lens, or corneal inlay for improving visual performance in a patient, wherein the optical device includes central optical and outer peripheral zones comprising an optical polymer material, comprising: modifying the refractive index of the optical polymer material in the central and outer peripheral zones by irradiating select regions with a focused, visible or near-IR laser below the optical breakdown threshold of the optical polymer material to provide refractive structures that exhibit a change in refractive index, and exhibit little or no scattering loss, and scanning over the select regions with the laser such that ablation or removal of the optical polymer material is not observed in the irradiated region, wherein refractive structures provided in the central optical zone of the optical device provide one or more of the following when the optical device is employed by a patient: extended depth of focus by inducing a higher order aberration; diffractive multifocal; refractive multifocal; chromatic aberration correction; higher order aberration corrections; binocular monovision; rotationally symmetric or asymmetric single ring; or custom corrections; and further wherein refractive structures provided in the peripheral zone of the optical device provide a region of altered refractive index to reduce glare, halo, edge effects or dysphotopsias. 9. A method according to claim 8 , wherein the optical device is an intraocular lens. 10. A method according to claim 9 , wherein refractive structures provided in the peripheral zone of the optical device provide a region of altered refractive index to reduce glare or halo effects caused by edges of the intraocular lens. 11. A method according to claim 8 , wherein the optical device is a contact lens. 12. An optical device according to claim 11 , wherein refractive structures provided in the peripheral zone expand peripheral vision. 13. A method for modifying an optical device selected from a contact lens, intraocular lens, or corneal inlay for improving visual performance in a patient, wherein the optical device includes central optical and outer peripheral zones comprising an optical polymer material, comprising: modifying the refractive index of the optical polymer material in the central and outer peripheral zones by irradiating select regions with a focused, visible or near-IR laser below the optical breakdown threshold of the optical polymer material to provide refractive structures that exhibit a change in refractive index, and exhibit little or no scattering loss, and scanning over the select regions with the laser such that ablation or removal of the optical polymer material is not observed in the irradiated region, wherein refractive structures provided in the central optical zone of the optical device provide one or more of the following when the optical device is employed by a patient: extended depth of focus by inducing a higher order aberration; diffractive multifocal; refractive multifocal; chromatic aberration correction; higher order aberration corrections; binocular monovision; rotationally symmetric or asymmetric single ring; or custom corrections; further wherein the optical device is an intraocular lens and the refractive structures provided in the peripheral zone of the optical device provide a region of altered refractive index to reduce glare or halo effects caused by edges of the intraocular lens; and wherein refractive structures provided in the peripheral zone of the optical device comprise a refractive index GRIN layer added to the lens inside the periphery of the lens having a decreasing refractive index with increasing distance from the

Assignees

Inventors

Classifications

  • Adjusting the refractive index, e.g. after implanting · CPC title

  • Production of contact lenses · CPC title

  • Simultaneous type · CPC title

  • Contact lenses for the eyes (disinfection or sterilisation of contact lenses A61L12/00) · CPC title

  • Annular configuration, e.g. pupil tuned · CPC title

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What does patent US10932901B2 cover?
Methods and systems wherein laser induced refractive index changes by focused femtosecond laser pulses in optical polymeric materials or optical tissues is performed to address various types of vision correction.
Who is the assignee on this patent?
Univ Rochester
What technology area does this patent fall under?
Primary CPC classification A61F2/1618. Mapped technology areas include Human Necessities.
When was this patent published?
Publication date Tue Mar 02 2021 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 3 related publications on this page (citations in our corpus or others sharing the same primary CPC).