IP Library › Granted Patent US 12,584,795
Granted Patent B2
US 12,584,795 · App. 18/537,880 · Granted Mar 24, 2026

Polarimetric image sensor

Inventor: François Deneuville (Grenoble, FR)
Assignee: Commissariat à l'Énergie Atomique et aux Énergies Alternatives
G01J4/04
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Quick Facts
Patent No.
US 12,584,795
App. No.
18/537,880
Granted
Mar 24, 2026
Kind
B2
Abstract

A polarimetric image sensor formed inside and on top of a semiconductor substrate, the sensor including: —a plurality of pixels, each comprising a photodetector formed in the semiconductor substrate; —a polarizing filter arranged on the side of an illumination surface of the photodetectors, the filter including, for each pixel, a polarizing structure; and—a polarization router comprising a two-dimensional metasurface arranged on the side of the polarizing filter opposite to the photodetectors, the metasurface including a two-dimensional array of pads.

Claims (31)

1 . Polarimetric image sensor formed inside and on top of a semiconductor substrate, the sensor comprising:

a plurality of pixels, each comprising a photodetector formed in the semiconductor substrate;

a polarizing filter arranged on the side of an illumination surface of the photodetectors, the filter comprising, for each pixel, a polarizing structure; and

a polarization router comprising a two-dimensional metasurface arranged on the side of the polarizing filter opposite to the photodetectors, the metasurface comprising a two-dimensional array of pads,

wherein said plurality of pixels comprises at least first and second pixels adapted to measuring radiations according to respectively first and second distinct polarizations, the polarizing structure of the first pixel being adapted to predominantly transmitting a radiation according to the first polarization and the polarizing structure of the second pixel being adapted to predominantly transmitting a radiation according to the second polarization, and

wherein a first portion of the two-dimensional metasurface located vertically in line with the first and second pixels is adapted to predominantly transmitting:

a radiation according to the first polarization towards the polarizing structure of the first pixel; and

a radiation according to the second polarization towards the polarizing structure of the second pixel.

2 . Sensor according to claim 1 , wherein the first and second polarizations are linear polarizations along first and second directions respectively forming 0° and 90° angles with a reference direction.

3 . Sensor according to claim 1 , wherein said plurality of pixels further comprises third and fourth pixels adapted to measuring radiations according to respectively third and fourth distinct polarizations, different from the first and second polarizations, the polarizing structure of the third pixel being adapted to predominantly transmitting a radiation according to the third polarization and the polarizing structure of the fourth pixel being adapted to predominantly transmitting a radiation according to the fourth polarization.

4 . Sensor according to claim 3 , wherein a second portion of the two-dimensional metasurface, different from the first portion and located vertically in line with the third and fourth pixels, is adapted to predominantly transmitting:

a radiation according to the third polarization towards the polarizing structure of the third pixel; and

a radiation according to the fourth polarization towards the polarizing structure of the fourth pixel.

5 . Sensor according to claim 3 , wherein the third and fourth polarizations are linear polarizations along third and fourth directions respectively forming 45° and 135° angles with respect to the reference direction.

6 . Sensor according to claim 1 , wherein each polarizing structure comprises a plurality of parallel metal bars.

7 . Sensor according to claim 6 , wherein each metal bar is coated with an absorbing stack.

8 . Sensor according to claim 7 , wherein the absorbing stack comprises:

a tungsten layer;

a silicon layer, coating the tungsten layer; and

a dielectric layer, coating the silicon layer.

9 . Sensor according to claim 1 , wherein the pads of the two-dimensional metasurface are made of amorphous silicon.

10 . Sensor according to claim 1 , wherein the pads of the two-dimensional metasurface are laterally surrounded with silicon oxide.

11 . Sensor according to claim 1 , wherein the pads of the two-dimensional metasurface have sub-wavelength lateral dimensions.

12 . Sensor according to claim 1 , further comprising a plurality of first microlenses extending in front of a pair of adjacent pixels, of the sensor.

13 . Sensor according to claim 12 , wherein the first microlenses each have an elongated shape.

14 . Sensor according to claim 12 , wherein the first microlenses are:

A) arranged on the side of a surface of the two-dimensional metasurface opposite to the photodetectors; or

B) interposed between the photodetectors and the two-dimensional metasurface.

15 . Sensor according to claim 14 , in its option B), further comprising a plurality of second microlenses distinct from the first microlenses and arranged on the side of a surface of the two-dimensional metasurface opposite to the photodetectors, each second microlens extending in front of a pair of adjacent pixels of the sensor.

16 . Sensor according to claim 15 , wherein each second microlens has an elongated shape.

17 . Sensor according to claim 4 , further comprising a plurality of first microlenses extending in front of a pair of adjacent pixels, of the sensor, wherein each first microlens further extends in front of the first portion or of the second portion of the metasurface.

Assignments (1)
EMPLOYMENT AGREEMENT Recorded Jan 16, 2024
From: DENEUVILLE, FRANÇOIS
To: COMMISSARIAT À L'ÉNERGIE ATOMIQUE ET AUX ÉNERGIES ALTERNATIVES
Reel/Frame 066306/0553 →
Priority Claims (1)
FR 2213920 · Dec 20, 2022 · national
Continuity (1)
Related Publication 20240201015A1 · Jun 20, 2024
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