IP Library Granted Patent US 12,231,749
Granted Patent B2
US 12,231,749 · App. 17/865,223 · Granted Feb 18, 2025

Sensing with liquid crystal polarization holograms and metasurface

Inventors: Qing Chao (Redmond, WA); Lu Lu (Kirkland, WA); Xinqiao Liu (Medina, WA); Hao Yu (Kent, OH); Junren Wang (Redmond, WA)
Assignee: Meta Platforms Technologies, LLC
H04N23/11G02B3/0056G02B5/201G02B5/32G02B1/002G02B5/3016H04N23/00
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Quick Facts
Patent No.
US 12,231,749
App. No.
17/865,223
Granted
Feb 18, 2025
Kind
B2
Abstract

Imaging systems, cameras, and image sensors of this disclosure include imaging pixels that include subpixels. Diffractive optical elements such as a metasurface lens layers or a liquid crystal polarization hologram (LCPH) are configured to focus image light to the subpixels of the imaging pixels.

Claims (31)

1. An image sensor comprising:

imaging pixels including a first subpixel configured to sense image light and a second subpixel configured to sense the image light; and

a patterned liquid crystal polarization hologram (LCPH) layer having microlens regions disposed over the imaging pixels, wherein the microlens regions are configured to focus the image light to the first subpixel and the second subpixel of the imaging pixels, wherein liquid crystals in the patterned LCPH layer are doped to:

pass a first wavelength band of the image light to the first subpixel and not the second subpixel; and

pass a second wavelength band of the image light to the second subpixel and not the first subpixel.

2. The image sensor of claim 1 , wherein the microlens regions have a one-to-one correspondence with subpixels of the imaging pixels.

3. The image sensor of claim 1 , wherein the microlens regions have a one-to-one correspondence with the imaging pixels.

4. The image sensor of claim 1 , wherein the microlens regions are rectangular.

5. The image sensor of claim 1 , wherein the microlens regions of the LCPH layer have a longest dimension of less than four microns wide.

6. An image sensor comprising:

imaging pixels including a first subpixel configured to sense image light and a second subpixel configured to sense the image light; and

a metasurface lens layer having microlens regions disposed over the imaging pixels, wherein the microlens regions are configured to focus the image light to the first subpixel and the second subpixel of the imaging pixels, and wherein nanostructures in the metasurface lens layer are configured to pass a first polarization orientation to the imaging pixels and reject a second polarization orientation from becoming incident on the imaging pixels, the first polarization orientation different from the second polarization orientation.

7. The image sensor of claim 6 , wherein the nanostructures in the metasurface lens layer are configured to:

pass a first wavelength band of the image light to the first subpixel and not the second subpixel; and

pass a second wavelength band of the image light to the second subpixel and not the first subpixel.

8. The image sensor of claim 6 , wherein the metasurface lens layer includes non-symmetric nanostructures.

9. The image sensor of claim 6 , wherein the metasurface lens layer is polarization-dependent.

10. The image sensor of claim 6 , wherein nanostructures of the metasurface lens layer are formed of at least one of silicon, silicon-nitride, or titanium-oxide.

11. The image sensor of claim 6 , wherein the microlens regions have a one-to-one correspondence with subpixels of the imaging pixels.

12. The image sensor of claim 6 , wherein the microlens regions have a one-to-one correspondence with the imaging pixels.

13. The image sensor of claim 6 , wherein the microlens regions are rectangular.

14. An image sensor comprising:

imaging pixels including a first subpixel configured to sense image light and a second subpixel configured to sense the image light;

a patterned liquid crystal polarization hologram (LCPH) layer having microlens regions disposed over the imaging pixels, wherein the microlens regions are configured to focus the image light to the first subpixel and the second subpixel of the imaging pixels; and

a wavelength filtering layer disposed between a semiconductor layer of the imaging pixels and the patterned LCPH layer.

15. An image sensor comprising:

imaging pixels including a first subpixel configured to sense image light and a second subpixel configured to sense the image light; and

a patterned liquid crystal polarization hologram (LCPH) layer having microlens regions disposed over the imaging pixels, wherein the microlens regions are configured to focus the image light to the first subpixel and the second subpixel of the imaging pixels, and wherein the patterned LCPH layer includes a polarized volume hologram (PVH) design.

16. An image sensor comprising:

imaging pixels including a first subpixel configured to sense image light and a second subpixel configured to sense the image light; and

a metasurface lens layer having microlens regions disposed over the imaging pixels, wherein the microlens regions are configured to focus the image light to the first subpixel and the second subpixel of the imaging pixels, and wherein nanostructures of the metasurface lens layer are formed of at least one of silicon, silicon-nitride, or titanium-oxide.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 24, 2022
From: CHAO, QING; LU, LU; LIU, XINQIAO; WANG, JUNREN; YU, HAO
To: META PLATFORMS TECHNOLOGIES, LLC
Reel/Frame 060892/0940 →
Continuity (2)
Provisional Application 63226916 · Jul 29, 2021
Related Publication 20230037261A1 · Feb 2, 2023
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