IP Library Granted Patent US 10,797,095
Granted Patent B2
US 10,797,095 · App. 16/570,142 · Granted Oct 6, 2020

Image sensors and methods of forming the same

Inventors: Yun Ki Lee (Hwaseong-si, KR); Minwook Jung (Yongin-si, KR)
Assignee: Samsung Electronics Co., Ltd.
H01L27/1463H01L27/1464H01L29/0649H01L27/14621H01L27/14627
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Quick Facts
Patent No.
US 10,797,095
App. No.
16/570,142
Granted
Oct 6, 2020
Kind
B2
Abstract

An image sensor includes a substrate including a plurality of pixel regions and having a trench between the pixel regions, a photoelectric conversion part in the substrate of each of the pixel regions, and a device isolation pattern in the trench. The device isolation pattern defines an air gap. The device isolation pattern has an intermediate portion and an upper portion narrower than the intermediate portion.

Claims (56)

1. An image sensor comprising:

a substrate including a plurality of pixel regions that include a first pixel region and a second pixel region;

a plurality of photoelectric conversion parts including a first photoelectric conversion part disposed in the first pixel region and a second photoelectric conversion part disposed in the second pixel region; and

a device isolation pattern disposed between the first pixel region and the second pixel region in the substrate,

wherein a void is disposed in the device isolation pattern,

wherein a width of an upper portion of the device isolation pattern is less than a width of an intermediate portion of the device isolation pattern, and

wherein a width of a bottom portion of the device isolation pattern is less than the width of the intermediate portion of the device isolation pattern.

2. The image sensor of claim 1 , wherein the device isolation pattern is disposed between the first photoelectric conversion part and the second photoelectric conversion part.

3. The image sensor of claim 1 , further comprising a grid pattern disposed on the substrate and vertically overlapping the device isolation pattern,

wherein a width of the grid pattern is less than the width of the intermediate portion of the device isolation pattern.

4. The image sensor of claim 1 , wherein the width of the upper portion of the device isolation pattern at the same level as an upper surface of the substrate is in a range of 30 nm to 250 nm.

5. The image sensor of claim 1 , wherein the bottom portion of the device isolation pattern is rounded.

6. The image sensor of claim 1 , wherein the device isolation pattern is spaced apart from a lower surface of the substrate.

7. The image sensor of claim 1 , wherein the device isolation pattern is disposed in a trench formed between the first pixel region and the second pixel region in the substrate,

wherein the device isolation pattern includes an insulating layer on inner sidewalls of the trench, and

wherein the insulating layer includes a silicon-based insulating material and/or a high-k dielectric material.

8. The image sensor of claim 7 , wherein the high-k dielectric material includes hafnium oxide and/or aluminum oxide, and

the silicon-based insulating material includes silicon nitride, silicon oxide, and/or silicon oxynitride.

9. The image sensor of claim 1 , wherein the void is vertically long shaped, and

a vertical length of the void is greater than a horizontal width of the void.

10. An image sensor comprising:

a substrate including a plurality of pixel regions that include a first pixel region and a second pixel region;

a plurality of photoelectric conversion parts including a first photoelectric conversion part disposed in the first pixel region and a second photoelectric conversion part disposed in the second pixel region;

a device isolation pattern disposed between the first photoelectric conversion part and the second photoelectric conversion part in the substrate; and

a grid pattern disposed on an upper surface of the substrate and vertically overlapping the device isolation pattern,

wherein a vertically long shaped void is disposed in the device isolation pattern,

wherein a vertical length of the void is greater than a horizontal width of the void, and

wherein a width of the grid pattern is less than a maximum width of the device isolation pattern.

11. The image sensor of claim 10 , further comprising:

a transfer gate disposed on a lower surface of the substrate; and

an interconnection structure disposed on the lower surface of the substrate and covering the transfer gate.

12. The image sensor of claim 10 , wherein a width of an upper portion of the device isolation pattern is less than a width of an intermediate portion of the device isolation pattern, and

wherein a width of a bottom portion of the device isolation pattern is less than the width of the intermediate portion of the device isolation pattern.

13. The image sensor of claim 10 , wherein the maximum width of the device isolation pattern is in a range of 200 nm to 300 nm.

14. The image sensor of claim 10 , further comprising an anti-reflection layer disposed on the upper surface of the substrate and covering the device isolation pattern.

15. The image sensor of claim 14 , further comprising:

a color filter disposed on the anti-reflection layer; and

a micro-lens disposed on the color filter.

16. An image sensor comprising:

a substrate including a plurality of pixel regions that include a first pixel region and a second pixel region;

a plurality of photoelectric conversion parts including a first photoelectric conversion part disposed in the first pixel region and a second photoelectric conversion part disposed in the second pixel region;

a device isolation pattern disposed between the first pixel region and the second pixel region in the substrate;

a transfer gate disposed on a lower surface of the substrate;

an interconnection structure disposed on the lower surface of the substrate and covering the transfer gate; and

a grid pattern disposed on an upper surface of the substrate and vertically overlapping the device isolation pattern,

wherein a vertically long shaped air-gap is disposed in the device isolation pattern,

wherein a width of an upper portion of the device isolation pattern is less than a width of an intermediate portion of the device isolation pattern,

wherein a width of a bottom portion of the device isolation pattern is less than the width of the intermediate portion of the device isolation pattern, and

wherein a width of the grid pattern is less than a maximum width of the device isolation pattern.

17. The image sensor of claim 16 , wherein the width of the upper portion of the device isolation pattern at the same level as an upper surface of the substrate is in a range of 30 nm to 250 nm, and

the maximum width of the device isolation pattern is in a range of 200 nm to 300 nm.

18. The image sensor of claim 16 , wherein a vertical length of the air-gap is greater than a horizontal width of the air-gap.

19. The image sensor of claim 16 , wherein the device isolation pattern is disposed in a trench formed between the first pixel region and the second pixel region in the substrate,

wherein the device isolation pattern includes an insulating layer on inner sidewalls of the trench, and

wherein the insulating layer includes a high-k dielectric material.

20. The image sensor of claim 19 , wherein a refractive index of the insulating layer is less than that of the substrate, and is greater than that of the air-gap.

Priority Claims (1)
KR 10-2015-0006012 · Jan 13, 2015 · national
Continuity (3)
Continuation 16026265 · Jul 3, 2018
Division 14994230 · Jan 13, 2016
Related Publication 20200013809A1 · Jan 9, 2020
Cited By (2)
US 12,191,335 US 12,628,454