IP Library Granted Patent US 12,046,613
Granted Patent B2
US 12,046,613 · App. 18/303,843 · Granted Jul 23, 2024

Image sensor and electronic device including the same

Inventors: Seokho Yun (Hwaseong-si, KR); Sookyoung Roh (Yongin-si, KR); Hongkyu Park (Hwaseong-si, KR); Minwoo Lim (Suwon-si, KR)
Assignee: SAMSUNG ELECTRONICS CO., LTD.
H01L27/14627G02B26/004G02B27/1013G02B27/123H01L27/14645H04N9/01H04N23/84
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Quick Facts
Patent No.
US 12,046,613
App. No.
18/303,843
Granted
Jul 23, 2024
Kind
B2
Abstract

An image sensor includes: a light detector including a plurality of photosensitive cells configured to sense light; a color separation lens array provided above the light detector and including a plurality of pattern structures, the color separation lens array being configured to collect light having different wavelength spectra respectively on at least two photosensitive cells of the plurality of photosensitive cells; and a variable interlayer element configured to adjust an optical distance between the light detector and the color separation lens array.

Claims (16)

1. An image acquisition method comprising:

controlling, by a processor, a variable interlayer element disposed between a color separation lens array and a light detector to form a plurality of different optical distances between the color separation lens array and the light detector;

sensing, by the light detector, plurality sets of optical signal with respect to each of the plurality of different optical distances;

performing computation, by the processor, to obtain image data by using the plurality sets of optical signal.

2. The image acquisition method of claim 1 , wherein the performing computation uses spectrum data related to an arrangement of wavelength distributions of unit pixels, with respect to the plurality of different optical distances.

3. The image acquisition method of claim 1 , wherein the performing computation obtains image data corresponding to an m(Q×Q) array, where m is a number of the plurality of different optical distances and the light detector includes Q×Q cell array.

4. The image acquisition method of claim 1 , wherein the processor controls the variable interlayer element so that a minimum distance of the plurality of different optical distances is 1λ or more, λ being a wavelength of incident light.

5. The image acquisition method of claim 1 , wherein the processor controls the variable interlayer element so that the plurality of different optical distances are in a range between 500 nm and 5 μm.

6. The image acquisition method of claim 1 , wherein the controlling the variable interlayer element comprising an adjusting a physical distance between the light detector and the color separation lens array.

7. The image acquisition method of claim 6 , wherein the controlling the variable interlayer element comprising a changing a position of the color separation lens array using a microelectromechanical system actuator.

8. The image acquisition method of claim 6 , wherein the controlling the variable interlayer element comprising an applying an electric signal to a variable shape structure included in the variable interlayer element.

9. The image acquisition method of claim 8 , wherein the variable shape material comprises a shape memory alloy or an electro-active polymer.

10. The image acquisition method of claim 6 , wherein the controlling the variable interlayer element comprising:

an applying a signal to move an optical fluid between a reservoir region and a variable height region for stretching or shrinking a stretchable membrane,

wherein the variable interlayer element comprises the variable height region, provided with the stretchable membrane, and the reservoir region in which an optical fluid to be introduced into the variable height region is stored.

11. The image acquisition method of claim 1 , wherein the controlling the variable interlayer element comprising an adjusting a refractive index of a variable refractive index layer included in the variable interlayer element.

Priority Claims (2)
KR 10-2020-0016627 · Feb 11, 2020 · national
KR 10-2020-0120027 · Sep 17, 2020 · national
Continuity (2)
Continuation 17173688 · Feb 11, 2021
Related Publication 20230261020A1 · Aug 17, 2023