IP Library › Granted Patent US 10,483,306
Granted Patent B2
US 10,483,306 · App. 16/086,478 · Granted Nov 19, 2019

Photoelectric conversion element and photoelectric conversion device

Inventors: Shinya Yamakawa (Kanagawa, JP); Jun Komachi (Kanagawa, JP); Koji Nagahiro (Kanagawa, JP)
Assignee: Sony Corporation
H01L27/14621G01S17/08H01L27/146H01L27/1461H01L27/14645H01L27/14649H01L31/10H01L31/102H01L31/12H04N5/232H04N5/33
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Quick Facts
Patent No.
US 10,483,306
App. No.
16/086,478
Granted
Nov 19, 2019
Kind
B2
Abstract

A photoelectric conversion element according to one embodiment of the disclosure includes a photoelectric conversion region inside a semiconductor layer. The photoelectric conversion region includes a region in which a depletion region is to be formed by voltage application to the semiconductor layer. The semiconductor layer has a first main surface and a second main surface. The depletion region converts light into a photoelectron, in which the light enters from side on which the first main surface is disposed. The photoelectric conversion element further includes an isoelectronic trap region in the region in which the depletion region is to be formed.

Claims (42)

1. A photoelectric conversion element, comprising:

a photoelectric conversion region inside a semiconductor layer,

the photoelectric conversion region including a region in which a depletion region is to be formed by voltage application to the semiconductor layer,

the semiconductor layer having a first main surface and a second main surface, the depletion region converting light into a photoelectron, and

the light entering from a side on which the first main surface is disposed;

an isoelectronic trap region in the region in which the depletion region is to be formed;

a pair of first impurity regions formed in the first main surface with a predetermined spacing, the pair of the first impurity regions having an identical electrical-conductivity type to an electrical-conductivity type of the semiconductor layer and having a relatively high impurity concentration; and

a pair of second impurity regions formed in the first main surface, with the pair of the first impurity regions interposed between the pair of the second impurity regions, the pair of the second impurity regions having a different electrical-conductivity type from the electrical-conductivity type of the semiconductor layer,

wherein the isoelectronic trap region is formed at least in the spacing between the pair of the first impurity regions.

2. The photoelectric conversion element according to claim 1 , wherein the semiconductor layer includes silicon, germanium, or a mixed crystal thereof.

3. The photoelectric conversion element according to claim 2 , wherein the isoelectronic trap region includes aluminum and nitrogen as impurities.

4. The photoelectric conversion element according to claim 1 , wherein the photoelectric conversion region comprises a photodiode in which a P-N structure or a P-I-N structure is formed in a stacking direction in the semiconductor layer.

5. The photoelectric conversion element according to claim 4 , wherein the photodiode includes a cathode region on the first main surface.

6. The photoelectric conversion element according to claim 1 , further comprising an element isolation region provided on the first main surface and above the isoelectronic trap region.

7. The photoelectric conversion element according to claim 6 , wherein the element isolation region includes silicon oxide.

8. A photoelectric conversion device, comprising:

one or more photoelectric conversion elements; and

a driver section that drives the one or more photoelectric conversion elements,

wherein the one or more photoelectric conversion elements each including:

a photoelectric conversion region inside a semiconductor layer,

the photoelectric conversion region including a region in which a depletion region is to be formed by voltage application to the semiconductor layer,

the semiconductor layer having a first main surface and a second main surface,

the depletion region converting light into a photoelectron, and

the light entering from a side on which the first main surface is disposed,

an isoelectronic trap region in the region in which the depletion region is to be formed;

a pair of first impurity regions formed in the first main surface with a predetermined spacing, the pair of the first impurity regions having an identical electrical-conductivity type to an electrical-conductivity type of the semiconductor layer and having a relatively high impurity concentration; and

a pair of second impurity regions formed in the first main surface, with the pair of the first impurity regions interposed between the pair of the second impurity regions, the pair of the second impurity regions having a different electrical-conductivity type from the electrical-conductivity type of the semiconductor layer,

wherein the isoelectronic trap region being formed at least in the spacing between the pair of the first impurity regions, and

wherein the driver section applying pulsed voltages having reverse phases to each other to the pair of the first impurity regions.

9. The photoelectric conversion device according to claim 8 , wherein the one or more photoelectric conversion elements include a plurality of photoelectric conversion elements, and

wherein the plurality of the photoelectric conversion elements share the semiconductor layer with one another and are two-dimensionally disposed in the first main surface of the semiconductor layer shared by the plurality of the photoelectric conversion elements.

10. The photoelectric conversion device according to claim 9 , further comprising:

a color filter array of a plurality of colors, the color filter array including at least red color filters,

wherein the isoelectronic trap region is formed at least at a position facing a corresponding one of the red color filters.

11. The photoelectric conversion device according to claim 10 , wherein the color filter array includes at least blue color filters in addition to the red color filters, and

wherein the isoelectronic trap region is formed to avoid at least positions facing the respective blue color filters.

12. The photoelectric conversion device according to claim 9 , wherein the isoelectronic trap region is formed at each of positions of an entrance of, at least, white light, infrared light, or near infrared light.

13. The photoelectric conversion device according to claim 8 , further comprising:

a light source that sends out infrared light or near infrared light; and

a distance derivation section that derives a distance to a test object on a basis of a voltage obtained from the one or more photoelectric conversion elements and on a basis of a drive voltage that drives the light source.

14. The photoelectric conversion device according to claim 8 , further comprising element isolation regions provided on the first main surface and above the isoelectronic trap region, the element isolation regions electrically isolating adjacent photoelectric conversion elements from each other.

15. The photoelectric conversion device according to claim 14 , wherein the element isolation regions include silicon oxide.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 19, 2018
From: YAMAKAWA, SHINYA; KOMACHI, JUN; NAGAHIRO, KOJI
To: SONY CORPORATION
Reel/Frame 047112/0372 →
Priority Claims (1)
JP 2016-067647 · Mar 30, 2016 · national
Continuity (1)
Related Publication 20190074312A1 · Mar 7, 2019