System and method for controlling light by an array of optical resonators

US10310287B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10310287-B2
Application numberUS-201415032418-A
CountryUS
Kind codeB2
Filing dateOct 28, 2014
Priority dateOct 28, 2013
Publication dateJun 4, 2019
Grant dateJun 4, 2019

How to read this patent

A practical reading order for non-experts. Skip the full description unless you need deep technical detail.

  1. Title

    What the patent document calls the invention.

  2. Abstract

    A short plain-language summary of the technical disclosure.

  3. Assignees and inventors

    Who owns or filed the patent and who is credited as inventor.

  4. Key dates

    Filing, priority, publication, and grant dates set the timeline.

  5. First independent claim

    The legal scope of protection — read this for what is actually claimed.

  6. CPC / IPC classifications

    Technology tags used to group this patent with similar filings.

  7. Citations and related patents

    Prior art links and similar publications in this corpus.

Abstract

Official abstract text for this publication.

An array of optical resonators comprises at least a first type of optical resonators each having a resonant response to an optical field at a first wavelength, and a second type of optical resonators each having a resonant response to an optical field at a second wavelength, being different from the first wavelength. The resonant responses can be selected to reduce chromatic aberrations, or to shape a profile of a light beam, or to selectively switch a near field beam.

First claim

Opening claim text (preview).

What is claimed is: 1. An optical system, comprising a refractive optical element, and an array of optical resonators, said refractive optical element and said array being positioned on the same optical axis, wherein said array of optical resonators comprises at least a first type of optical resonators each having a resonant response to an optical field at a first wavelength, and a second type of optical resonators each having a resonant response to an optical field at a second wavelength, being different from said first wavelength, said resonant responses being selected to reduce chromatic aberrations associated with said refractive optical element; wherein different types of optical resonators engage different surfaces. 2. The system according to claim 1 , wherein at least one optical resonator of said first type is laterally displaced from any optical resonator of said second type, and at least one optical resonator of said first type partially overlaps with at least one optical resonator of said second type. 3. The system according to claim 1 , wherein said first type of optical resonators has a resonant response to an optical field at a first polarization, and said second type of optical resonators has resonant response to an optical field at a second polarization, being different from said first polarization. 4. The system according to claim 3 , further comprising a polarizer constituted to polarize an optical field prior to an incident of said optical field on said array of optical resonators. 5. The system according to claim 3 , wherein said array of optical resonators is configured to focus: (i) an optical field having said first wavelength and said first polarization at a focal plane, and (ii) an optical field having said second wavelength and said second polarization, onto the same focal plane. 6. The system according to claim 3 , wherein said array of optical resonators is configured to focus said first polarization onto a first focal plane, and said second polarization onto a second focal plane, being different from said first plane. 7. The system according to claim 3 , wherein said array of optical resonators is configured to provide a polarization-dependent beam profile. 8. The system according to claim 1 , wherein said array of optical resonators is configured to provide a wavelength-dependent beam profile. 9. The system according to claim 1 , wherein said array of optical resonators is configured to focus white light at a single focal plane. 10. The system according to claim 1 , further comprising at least one additional array of optical resonators, wherein said array and said at least one additional array engage different surfaces. 11. The system according to claim 10 , wherein said array and said additional array are planar. 12. The system according to claim 1 , wherein said array of optical resonators is planar. 13. The system according to claim 1 , further comprising a substrate carrying said array of optical resonators. 14. The system according to claim 13 , wherein said substrate is generally rigid. 15. The system according to claim 13 , wherein said substrate is flexible. 16. The system according to claim 1 , wherein said array of optical resonators is deposited or printed on a refractive surface of said refractive optical element. 17. The system according to claim 1 , wherein said resonant response comprises plasmonic excitation. 18. The system according to claim 1 , being configured for providing diffraction in reflective mode. 19. The system according to claim 1 , being configured for providing diffraction in transmissive mode. 20. The system according to claim 1 , wherein there are more than two types of resonators, and wherein the resonators of each type have a resonant response to an optical field at a different wavelength. 21. An optical system, comprising an array of optical resonators, wherein said array of optical resonators comprises at least a first type of optical resonators each having a resonant response to an optical field at a first wavelength, and a second type of optical resonators each having a resonant response to an optical field at a second wavelength, being different from said first wavelength, wherein at least one optical resonator of said first type is laterally displaced from any optical resonator of said second type, and at least one optical resonator of said first type partially overlaps with at least one optical resonator of said second type. 22. The system according to claim 21 , wherein said array of optical resonators is configured to focus both said first and said second wavelengths generally onto a same focal plane. 23. The system according to claim 21 , wherein at least some of said optical resonators are elongated nanostructures. 24. The system according to claim 21 , wherein at least some of said optical resonators are nanoantennas. 25. The system according to claim 21 , wherein at least some of said optical resonators are selected from the group consisting of resonant cavities, nano-apertures and quantum confinement structures. 26. The system according to claim 21 , wherein said array is positioned at or near a Fourier plane of an image. 27. The system according to claim 21 , serving as a component in a system selected from the group consisting of: a lens system, a beam shaping system, an imaging system and an optical sensor system. 28. A method of controlling light, comprising directing a light beam or an image onto the system according to claim 21 . 29. The method of claim 28 , being executed for at least one of reducing longitudinal chromatic aberrations, reducing transverse chromatic aberrations, reshaping a profile of said light, shaping a profile of a near field beam, switching a near field beam, hyper spectral imaging, spectroscopy, obtaining spatial spectral dependence of said sample or image, and filtering spatial frequencies of said image. 30. An optical system, comprising a refractive optical element, and an array of optical resonators, said refractive optical element and said array being positioned on the same optical axis, wherein said array of optical resonators comprises at least a first type of optical resonators each having a resonant response to an optical field at a first wavelength, and a second type of optical resonators each having a resonant response to an optical field at a second wavelength, being different from said first wavelength, said resonant responses being selected to reduce chromatic aberrations associated with said refractive optical element; and wherein said array of optical resonators is configured to provide a wavelength-dependent beam profile. 31. An optical system, comprising a refractive optical element, and an array of optical resonators, said refractive optical element and said array being positioned on the same optical axis, wherein said array of optical resonators comprises at least a first type of optical resonators each having a resonant response to an optical field at a first wavelength, and a second type of optical resonators each having a resonant response to an optical field at a second wavelength, being different from said first wavelength, said resonant responses being selected to reduce chromatic aberrations associated with said refractive optical element; and wherein said array of optical re

Assignees

Inventors

Classifications

  • Surface plasmon devices (diffractive gratings with a pitch less than or comparable to the wavelength G02B5/1809; surface plasmons in integrated optics G02B6/1226; optical analysis of materials by means of surface plasmons G01N21/553) · CPC title

  • Nanooptics, e.g. quantum optics or photonic crystals · CPC title

  • having a diffractive element with major polarization dependent properties · CPC title

  • made of materials engineered to provide properties not available in nature, e.g. metamaterials · CPC title

  • Polarising elements (light-modulating devices with active elements G02F1/00) · CPC title

Patent family

Related publications grouped by family.

External sources

Frequently asked questions

Answers are generated from the same data shown on this page.

What does patent US10310287B2 cover?
An array of optical resonators comprises at least a first type of optical resonators each having a resonant response to an optical field at a first wavelength, and a second type of optical resonators each having a resonant response to an optical field at a second wavelength, being different from the first wavelength. The resonant responses can be selected to reduce chromatic aberrations, or to …
Who is the assignee on this patent?
Univ Ramot
What technology area does this patent fall under?
Primary CPC classification G02B27/4211. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Jun 04 2019 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 6 related publications on this page (citations in our corpus or others sharing the same primary CPC).