IP Library › Granted Patent US 10,446,538
Granted Patent B2
US 10,446,538 · App. 16/136,671 · Granted Oct 15, 2019

Electrostatic discharge protection structure and fabrication method thereof

Inventor: Fei Zhou (Shanghai, CN)
Assignees: Semiconductor Manufacturing International (Beijing) Corporation; Semiconductor Manufacturing International (Shanghai) Corporation
H01L27/0255H01L21/823814H01L21/823821H01L21/823828H01L27/0296H01L27/0924H01L29/0657H01L29/0692H01L29/0847H01L29/165H01L29/1608H01L29/66545H01L29/7848H01L29/861H01L29/0649H01L29/161
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Quick Facts
Patent No.
US 10,446,538
App. No.
16/136,671
Granted
Oct 15, 2019
Kind
B2
Abstract

A method is provided for fabricating an electrostatic discharge (ESD) protection structure. The method includes forming a substrate having a first region and a second region, wherein the first region and the second region have a preset distance; forming a well area in the substrate; forming a first fin portion in the substrate in the first region and a second fin portion in the substrate in the second region; forming a supporting gate structure, wherein the supporting gate structure includes a first supporting gate crossing the first fin portion and a second supporting gate crossing the second fin portion; forming a dielectric layer on the well area; and forming a conductive structure in the dielectric layer, wherein the conductive structure includes a first conductive structure connecting to the first fin portion and a second conductive structure connecting to the second fin portion.

Claims (69)

1. A method for fabricating an ESD protection structure, comprising:

forming a substrate having a first region and a second region, wherein the first region and the second region are separated by a preset distance;

forming a well area in the substrate, wherein the well area covers the first region, the second region, and a region between the first region and the second region;

forming a first fin portion in the substrate in the first region and a second fin portion in the substrate in the second region, wherein the first fin portion has first-type doping ions and the second fin portion has second-type doping ions;

forming a supporting gate structure, wherein the supporting gate structure includes a first supporting gate crossing the first fin portion and covering portions of top and side surfaces of the first fin portion, and a second supporting gate crossing the second fin portion and covering portions of top and side surfaces of the second fin portion;

forming a dielectric layer on the well area between the first region and the second region, and between the first fin portion, the second fin portion, and the supporting gate structure, wherein the supporting gate structure is in the dielectric layer;

forming a conductive structure in the dielectric layer, wherein the conductive structure includes a first conductive structure connecting to the first fin portion and being configured to connect to a first bias voltage, and a second conductive structure connecting to the second fin portion and being configured to connect to a second bias voltage, and the first bias voltage and the second bias voltage are not equal to one another; and

forming a first conductive layer on the dielectric layer and a top surface of the first supporting gate, and a second conductive layer on the dielectric layer and a top surface of the second supporting gate.

2. The method according to claim 1 , wherein:

the first supporting gate is electronically connected to the first bias voltage; and

the second supporting gate is electronically connected to the second bias voltage.

3. The method according to claim 1 ,

wherein the first conductive layer is contacted with the first supporting gate and the first conductive structure, receiving the first bias voltage; and

the second conductive layer is contacted with the second supporting gate and the second conductive structure, receiving the second bias voltage.

4. The method according to claim 3 , wherein forming the dielectric layer includes:

forming a dielectric material layer covering the well area between the first region and the second region, the first fin portion, the second fin portion, and the supporting gate structure; and

planarizing the dielectric material layer by a chemical mechanical polishing process to form the dielectric layer, such that the dielectric layer exposes the supporting gate structure.

5. The method according to claim 1 , after forming the supporting gate structure and before forming the dielectric layer, further including:

forming a first epitaxial layer in the first fin portion at both sides of the first supporting gate, wherein the first epitaxial layer has the first-type doping ions; and

forming a second epitaxial layer in the second fin portion at both sides of the second supporting gate, wherein the second epitaxial layer has the second-type doping ions;

wherein the first conductive structure connects to the first fin portion through the first epitaxial layer; and the second conductive structure connects to the second fin portion through the second epitaxial layer.

6. The method according to claim 1 , wherein:

the supporting gate structure is a dummy gate;

the supporting gate structure is made of polysilicon; or

the supporting gate structure is a polysilicon gate or a metal gate.

7. The method according to claim 1 , wherein:

the first conductive structure crosses the first fin portion, and the first conductive structure covers portions of top and side surfaces of the first fin portion; and

the second conductive structure crosses the second fin portion, and the second conductive structure covers portions of top and side surfaces of the second fin portion.

8. The method according to claim 1 , wherein:

the first conductive structure and the first supporting gate are arranged in parallel; and

the second conductive structure and the second supporting gate are arranged in parallel.

9. The method according to claim 1 , wherein:

a number of the first conductive structure and the second conductive structure is more than one;

a number of the first supporting gate and the second supporting gate is more than one;

the first conductive structure and the first supporting gate are alternately arranged; and

the second conductive structure and the second supporting gate are alternately arranged.

10. The method according to claim 1 , wherein:

the first conductive layer and the second conductive layer are bar-shaped;

the first supporting gate and the first conductive structure are arranged in parallel, and the first conductive layer is vertically arranged with the first supporting gate and the first conductive structure; and

the second supporting gate and the second conductive structure are arranged in parallel, and the second conductive layer is vertically arranged with the second supporting gate and the second conductive structure.

11. The method according to claim 1 , wherein:

the second region surrounds the first region.

12. The method according to claim 1 , wherein:

the first region is a square-shaped region; and

the second region is a square annular-shaped region.

13. The method according to claim 1 , wherein:

the preset distance between the first region and the second region is in a range of approximately 0.2-1 μm.

14. The method according to claim 1 , wherein:

a first epitaxial layer is formed in the first fin portion at both sides of the first supporting gate, wherein the first epitaxial layer has the first-type doping ions;

a second epitaxial layer is formed in the second fin portion at both sides of the second supporting gate, wherein the second epitaxial layer has the second-type doping ions;

the first conductive structure connects to the first fin portion through the first epitaxial layer; and

the second conductive structure connects to the second fin portion through the second epitaxial layer.

15. The method according to claim 14 , wherein:

the first epitaxial layer is an “Σ” shaped epitaxial layer made of silicon and germanium materials; and

the second epitaxial layer is a square-shaped epitaxial layer made of silicon and carbon materials.

16. The method according to claim 1 , wherein:

the first-type doping ions are P-type ions;

the second-type doping ions are N-type ions; and

the well area is an N-type well area.

17. The method according to claim 1 , wherein:

the first region is configured to form a first anode connected to a ground;

the second region is configured to form a second anode connected to the ground.

18. The method according to claim 1 , wherein:

the first supporting gate divides the first epitaxial layer into many small-area epitaxial layers; and

the second supporting gate divides the second epitaxial layer into many small-area epitaxial layers.

19. The method according to claim 1 , wherein:

the second region is in parallel with the first region.

20. The method according to claim 1 , wherein:

a top surface of the supporting gate structure is coplanar with a top surface of the dielectric layer and a top surface of the conductive structure.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 20, 2018
From: ZHOU, FEI
To: SEMICONDUCTOR MANUFACTURING INTERNATIONAL (BEIJING) CORPORATION; SEMICONDUCTOR MANUFACTURING INTERNATIONAL (SHANGHAI) CORPORATION
Reel/Frame 046926/0981 →
Priority Claims (1)
CN 2016 1 0008649 · Jan 6, 2016 · national
Continuity (2)
Division 15262930 · Sep 12, 2016
Related Publication 20190019788A1 · Jan 17, 2019
Cited By (1)
US 12,707,726