IP Library Granted Patent US 12710313
Granted Patent B2
US 12710313 · App. 18/695,391 · Granted Aug 18, 2026

System and method for imaging with a pixelated metasurface waveplate and a uniform polarizer

Inventors: Rui Luo (Fremont, CA); Michael John Yadlowsky (Sunnyvale, CA)
Assignee: Corning Incorporated
G01J4/04G02B3/0037G02B5/3058G02B5/3083
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Quick Facts
Patent No.
US 12710313
App. No.
18/695,391
Granted
Aug 18, 2026
Kind
B2
Abstract

A polarization camera that includes a pixelated waveplate positioned to receive light. The pixelated waveplate includes an array of super-pixels comprising birefringent structures. Each super-pixel comprises a first at least one sub-pixel comprising a quarter-wave plate and a second at least one sub-pixel comprising a half-wave plate. A non-pixelated polarizer receives light from the pixelated waveplate. A detector detects light received from the polarizer.

Claims (55)

1 . A polarization camera comprising:

a microlens array;

a pixelated waveplate positioned to receive light passing through the microlens array, the pixelated waveplate includes an array of super-pixels comprising birefringent structures, wherein each super-pixel of said pixelated waveplate comprises:

a first at least one sub-pixel comprising a quarter-wave plate,

and a second at least one sub-pixel comprising a half-wave plate;

a non-pixelated polarizer positioned to receive light from the pixelated waveplate; and

a detector configured to detect light received from the non-pixelated polarizer; and wherein the pixelated waveplate comprises a metamaterial, and the metamaterial comprises high-index sub-wavelength structures defining structural birefringence.

2 . The polarization camera of claim 1 , further comprising a color filter disposed between at least one of the microlens array and the pixelated waveplate, the pixelated waveplate and the non-pixelated polarizer, or the non-pixelated polarizer and the detector, and wherein the quarter-wave plate and the half-wave plate are achromatic within a predetermined bandwidth of the color filter.

3 . A polarization camera comprising:

a microlens array;

a pixelated waveplate positioned to receive light passing through the microlens array, the pixelated waveplate includes an array of super-pixels comprising birefringent structures, wherein each super-pixel comprises:

a first at least one sub-pixel comprising a quarter-wave plate,

and a second at least one sub-pixel comprising a half-wave plate;

a non-pixelated polarizer to receive light from the pixelated waveplate; and

a detector configured to detect light received from the non-pixelated polarizer;

and further comprising a uniform waveplate disposed between the microlens array and the pixelated waveplate.

4 . The polarization camera of claim 3 , wherein the pixelated waveplate comprises a metamaterial.

5 . The polarization camera of claim 3 , wherein the uniform waveplate applies a uniform birefringence to light traversing the uniform waveplate.

6 . The polarization camera of claim 3 , wherein the non-pixelated polarizer comprises a non-pixelated metal grid.

7 . The polarization camera of claim 3 , further comprising a color filter disposed between at least one of the microlens array and the pixelated waveplate, the pixelated waveplate and the non-pixelated polarizer, or the non-pixelated polarizer and the detector, wherein the quarter-wave plate and the half-wave plate are achromatic within a predetermined bandwidth of the color filter.

8 . The polarization camera of claim 3 , wherein the first at least one sub-pixel comprises the quarter-wave plate with a fast axis oriented at 45 or 135 degrees relative to the polarizer transmission axis, and the second at least one sub-pixel comprises the half-wave plate with a fast axis oriented at 22.5, 45, 67.5, 112.5, 135, or 157.5 degrees relative to the polarizer transmission axis.

9 . A polarization camera comprising:

a microlens array;

a pixelated waveplate positioned to receive light passing through the microlens array, the pixelated waveplate includes an array of super-pixels comprising birefringent structures, wherein each super-pixel comprises:

a first at least one sub-pixel comprising a quarter-wave plate,

and a second at least one sub-pixel comprising a half-wave plate;

a non-pixelated polarizer to receive light from the pixelated waveplate; and

a detector configured to detect light received from the non-pixelated polarizer;

and, wherein each super-pixel further comprises a third at least one sub-pixel comprising a zero-wave plate that has no net birefringence such that incident polarization states of the received light is not altered.

10 . The polarization camera of claim 9 , wherein the pixelated waveplate comprises a metamaterial, and the metamaterial comprises high-index sub-wavelength structures defining structural birefringence.

11 . The polarization camera of claim 9 , wherein each super-pixel comprises four sub-pixels and the waveplate sub-pixels are (1) zero-wave plate, (2) half-wave plate with fast axis oriented at 22.5 degrees relative to the polarizer transmission axis, (3) a quarter-wave plate with fast axis oriented at 45 degrees relative to the polarizer transmission axis, and (4) a half-wave plate with fast axis oriented at 45 or 135 degrees relative to the polarizer transmission axis, further comprising a computing device coupled to the detector, wherein the computing device is configured to determine Stokes parameters for a first super-pixel of the array of super-pixels according to the following equations: S 0 −I A′ +I D′ , S 1 −I A′ −I D′ , S 2 −2I B′ −I A′ −I D′ , S 3 −2I C′ −I A′ −I D′ , wherein I A′ comprises an intensity at the third at least one sub-pixel, I C′ comprises an intensity at a first of the first at least one sub-pixel, I B′ comprises an intensity at a first of the second at least one sub-pixel, I D′ comprises an intensity at a second of the second at least one sub-pixel, S 0 comprises a Stokes parameter for a first polarization coordinate, S 1 comprises a Stokes parameter for a second polarization coordinate, S 2 comprises a Stokes parameter for a third polarization coordinate, and S 3 is a Stokes parameter for a fourth polarization coordinate.

12 . The polarization camera of claim 9 , wherein each super-pixel comprises six sub-pixels and the sub-pixel waveplates are (1) zero-wave plate, (2) half-wave plate with fast axis oriented at 22.5 degrees relative to the polarizer transmission axis, (3) a quarter-wave plate with fast axis oriented at 45 degrees relative to the polarizer transmission axis, (4) a half-wave plate with fast axis oriented at 67.5 degrees relative to the polarizer transmission axis, (5) a quarter-wave plate with fast axis oriented at 135 degrees relative to the polarizer transmission axis, and (6) a half-wave plate with fast axis oriented at 45 or 135 degrees relative to the polarizer transmission axis, further comprising a computing device coupled to the detector, wherein the computing device is configured to determine Stokes parameters for a first super-pixel of the array of super-pixels according to the following equations: S 0 =I A +I F , S 1 =I A −I F , S 2 =I B −I D , S 3 =I C −I E , wherein I A comprises an intensity at the third at least one sub-pixel, I B comprises an intensity at a first of the first at least one sub-pixel, I C comprises an intensity at a second of the first at least one sub-pixel, I D comprises an intensity at a first of the second at least one sub-pixel, I E comprises an intensity at a second of the second at least one sub-pixel, I F comprises an intensity at a third of the second at least one sub-pixel, S 0 comprises a Stokes parameter for a first polarization coordinate, S 1 comprises a Stokes parameter for a second polarization coordinate, S 2 comprises a Stokes parameter for a third polarization coordinate, and S 3 is a Stokes parameter for a fourth polarization coordinate.

13 . The polarization camera of claim 9 , wherein the first at least one sub-pixel comprises the quarter-wave plate with a fast axis oriented at 45 or 135 degrees relative to the polarizer transmission axis, and the second at least one sub-pixel comprises the half-wave plate with a fast axis oriented at 22.5, 45, 67.5, 112.5, 135, or 157.5 degrees relative to the polarizer transmission axis.

14 . A component stack for a polarization camera comprising:

a pixelated waveplate positioned to receive light, the pixelated waveplate comprising an array of super-pixels comprising birefringent structures, wherein each super-pixel comprises:

a first at least one sub-pixel comprising a quarter-wave plate,

and a second at least one sub-pixel comprising a half-wave plate;

a non-pixelated polarizer positioned to receive light from the pixelated waveplate; and

a color filter wherein the quarter-wave plate and the half-wave plate are achromatic within a predetermined bandwidth of the color filter, further comprising a uniform waveplate positioned such that the pixelated waveplate receives light from the uniform waveplate, wherein the uniform waveplate applies a uniform birefringence to the light received by the pixelated waveplate.

15 . The component stack of claim 14 , wherein the non-pixelated polarizer comprises a uniformly patterned polarizer.

16 . The component stack of claim 14 , wherein the pixelated waveplate comprises a metamaterial.

17 . A component stack for a polarization camera comprising:

a pixelated waveplate positioned to receive light, the pixelated waveplate comprising an array of super-pixels comprising birefringent structures, wherein each super-pixel comprises:

a first at least one sub-pixel comprising a quarter-wave plate,

and a second at least one sub-pixel comprising a half-wave plate;

a non-pixelated polarizer to receive light from the pixelated waveplate; and

a color filter wherein the quarter-wave plate and the half-wave plate are achromatic within a predetermined bandwidth of the color filter, wherein the each super-pixel further comprises a third at least one sub-pixel comprising a zero-wave plate that has no net birefringence such that incident polarization states of the received light is not altered.

18 . A pixelated waveplate for a component stack for a polarization camera, comprising:

an array of super-pixels, wherein each super-pixel comprises:

a first at least one sub-pixel comprising a quarter-wave plate, and a second at least one sub-pixel comprising a half-wave plate, wherein each super-pixel further comprises a third at least one sub-pixel comprising a zero-wave plate that has no net birefringence such that incident polarization states of the received light is not altered.

19 . The pixelated waveplate of claim 18 , wherein:

the quarter-wave plate is configured to impart a π/2 phase difference between linear polarization states perpendicular and parallel to a fast axis of the first at least one sub-pixel;

the half-wave plate is configured to impart a π phase difference between linear polarization states perpendicular and parallel to a fast axis of the second at least one sub-pixel;

the quarter-wave plate includes a fast axis oriented at 45 or 135 degrees relative to the polarizer transmission axis; and

the half-wave plate includes a fast axis oriented at 22.5, 45, 67.5, 112.5, 135, or 157.5 degrees relative to the polarizer transmission axis.