IP Library › Granted Patent US 11,417,700
Granted Patent B2
US 11,417,700 · App. 16/989,706 · Granted Aug 16, 2022

Image sensing device and manufacturing method thereof

Inventors: Chih-Chang Huang (Chiayi, TW); Chi-Ming Lu (Kaohsiung, TW); Jian-Ming Chen (Chiayi, TW); Jung-Chih Tsao (Tainan, TW); Yao-Hsiang Liang (Hsinchu, TW)
Assignee: TAIWAN SEMICONDUCTOR MANUFACTURING COMPANY LTD.
H01L27/14636H01L21/76802H01L21/76843H01L21/76856H01L21/76889H01L27/1463H01L27/1464H01L27/14612H01L27/14621H01L27/14623H01L27/14625H01L27/14627H01L27/14645H01L27/14685H01L27/14689H01L27/14698
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Quick Facts
Patent No.
US 11,417,700
App. No.
16/989,706
Granted
Aug 16, 2022
Kind
B2
Abstract

Some embodiments of the present disclosure provide a back side illuminated (BSI) image sensor. The back side illuminated (BSI) image sensor includes a semiconductive substrate and an interlayer dielectric (ILD) layer at a front side of the semiconductive substrate. The ILD layer includes a dielectric layer over the semiconductive substrate and a contact partially buried inside the semiconductive substrate. The contact includes a silicide layer including a predetermined thickness proximately in a range from about 600 angstroms to about 1200 angstroms.

Claims (35)

1. A back side illuminated (BSI) image sensor, comprising:

a semiconductive substrate; and

an interlayer dielectric (ILD) layer at a front side of the semiconductive substrate, and the ILD layer comprising:

a contact partially buried inside the semiconductive substrate, and the contact comprising:

a silicide layer partially below the front side of the semiconductive substrate, wherein the silicide layer includes a first portion below the front side and a second portion above the front side, and a maximum width of the second portion is greater than a maximum width of the first portion, and a lattice structure of the silicide layer includes a {311} plane.

2. The BSI image sensor of claim 1 , wherein the semiconductive substrate comprises a non-silicide portion.

3. The BSI image sensor of claim 1 , wherein the-contact comprises a barrier layer lined conformally on top of the silicide layer.

4. The BSI image sensor of claim 1 , wherein the silicide layer is a salicide layer comprising a titanium element.

5. The BSI image sensor of claim 1 , wherein the {311} plane is configured to be measured with peaks on the X-ray diffraction pattern of the lattice structure.

6. The BSI image sensor of claim 1 , wherein the silicide layer comprises a bottom surface substantially flat in contact with the semiconductive substrate.

7. A back side illuminated (BSI) image sensor, comprising:

a semiconductive substrate comprising a silicon portion; and

an interlayer dielectric (ILD) layer at a front side of the semiconductive substrate, and the ILD layer comprising:

a dielectric layer on the front side; and

a contact plug surrounded by the dielectric layer and partially buried inside the silicon portion, and the contact plug comprising:

a salicide layer partially below and partially over the front side of the semiconductive substrate, wherein a cross-sectional view of the salicide layer shows a trapezoid shape with an upper base greater than a lower base, and a lattice structure of the salicide layer includes a {040} plane or a {022} plane.

8. The BSI image sensor of claim 7 , wherein the silicon portion comprises a material void of metal or dopant.

9. The BSI image sensor of claim 7 , wherein the {040} plane is configured to be measured with peaks on the X-ray diffraction pattern of the lattice structure.

10. The BSI image sensor of claim 7 , wherein the contact comprises a barrier layer and a conductive plug over the salicide layer.

11. The BSI image sensor of claim 7 , wherein the {022} plane is configured to be measured with peaks on the X-ray diffraction pattern of the lattice structure.

12. The BSI image sensor of claim 7 , wherein the salicide layer comprises a bottom surface and a top surface, and the bottom surface being substantially parallel with the top surface and the front side.

13. The BSI image sensor of claim 7 , wherein the salicide layer comprises a titanium element.

14. A back side illuminated (BSI) image sensor, comprising:

a semiconductive substrate; and

an interlayer dielectric (ILD) layer at a front side of the semiconductive substrate, and the ILD layer comprising:

a contact partially buried inside the semiconductive substrate, and the contact comprising:

a conductive material;

a salicide layer partially below and partially over the front side of the semiconductive substrate; and

a barrier layer between the silicide layer and a conductive material inside the contact, wherein the salicide layer is in a tapered shape, and a radius of the salicide layer monotonically decrease from a top of the salicide layer to a bottom of the salicide layer, and a lattice structure of the salicide layer includes a {220} plane.

15. The BSI image sensor of claim 14 , wherein the silicide layer comprises an upper portion in the ILD layer, and a lower portion in the semiconductive substrate.

16. The BSI image sensor of claim 14 , wherein the contact further comprises a thin film conductive layer lined between the ILD layer and the barrier layer.

17. The BSI image sensor of claim 14 , wherein the barrier layer is a thin film such that an area of a bottom side of the conductive material is the same as an area of a bottom side of the barrier layer.

18. The BSI image sensor of claim 14 , wherein the conductive material is partially surrounded by the barrier layer at a bottom side and at a lateral side.

19. The BSI image sensor of claim 14 , wherein the conductive material is in contact with an interconnection at a top of the conductive material.

20. The BSI image sensor of claim 14 , wherein the {220} plane is configured to be measured with a peak having an intensity higher than the peak corresponding to the {311} plane on the X-ray diffraction pattern of the lattice structure.

Continuity (4)
Continuation 16223712 · Dec 18, 2018
Continuation 15624055 · Jun 15, 2017
Division 14689838 · Apr 17, 2015
Related Publication 20200373345A1 · Nov 26, 2020
Cited By (1)
US 12,733,471