IP Library Granted Patent US 12,660,263
Granted Patent B2
US 12,660,263 · App. 18/149,571 · Granted Jun 16, 2026

Method of forming semiconductor device with silicide layer with different silicide phases or different thicknesses

Inventors: Ta-Chun Lin (Hsinchu, TW); Yi-Hsien Chen (Hsinchu County, TW); Chi Huang (Changhua County, TW); Chih-Pin Tsao (Hsinchu County, TW); Chun-Sheng Liang (Changhua County, TW); Chih-Hao Chang (Hsinchu County, TW)
Assignee: TAIWAN SEMICONDUCTOR MANUFACTURING COMPANY, LTD.
H10D62/121H10D30/6729H10D30/6757H10D64/017H10D84/0128H10D84/013H10D84/038
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Quick Facts
Patent No.
US 12,660,263
App. No.
18/149,571
Granted
Jun 16, 2026
Kind
B2
Abstract

A method of forming a semiconductor device includes the following steps. A substrate is patterned to form a fin structure. The fin structure is recessed to form a recess in the fin structure. An epitaxial source/drain region is grown from the recess. A first silicide layer is formed on the epitaxial source/drain region. A first portion of the first silicide layer is thinned, while leaving a second portion of the first silicide layer un-thinned. A metal contact is formed in contact with the thinned first portion of the first silicide layer.

Claims (46)

1 . A method of forming a semiconductor device, comprising:

patterning a substrate to form a fin structure;

recessing the fin structure to form a recess in the fin structure;

growing an epitaxial source/drain region from the recess;

forming a first silicide layer on the epitaxial source/drain region;

thinning a first portion of the first silicide layer, while leaving a second portion of the first silicide layer un-thinned, wherein the first portion has a top surface lower than a top surface of the second portion; and

forming a metal contact in contact with the thinned first portion of the first silicide layer.

2 . The method of claim 1 , wherein the metal contact has a bottommost surface in contact with the first silicide layer.

3 . The method of claim 1 , further comprising:

doping the thinned first portion of the first silicide layer with a dopant; and

after doping the thinned first portion of the first silicide layer, annealing the first silicide layer.

4 . The method of claim 3 , wherein the dopant comprises B, P, As, Sb, Ga, F, C, N, Ar, He, H, Cl, Si, Ge, or a combination thereof.

5 . The method of claim 3 , wherein after annealing the first silicide layer, the thinned first portion of the first silicide layer has a Ti 5 Si 4 phase.

6 . The method of claim 5 , wherein after annealing the first silicide layer, the thinned first portion of the first silicide layer has a silicide phase different from a silicide phase of the un-thinned second portion of the first silicide layer.

7 . The method of claim 1 , wherein thinning the first portion of the first silicide layer is performed such that the epitaxial source/drain region is exposed.

8 . The method of claim 7 , further comprising:

forming a second silicide layer on the epitaxial source/drain region after thinning the first portion of the first silicide layer.

9 . The method of claim 8 , wherein the second silicide layer has a silicide phase different from a silicide phase of the first silicide layer.

10 . The method of claim 1 , wherein thinning the first portion of the first silicide layer is performed such that a portion of the epitaxial source/drain region is removed.

11 . The method of claim 1 , wherein the un-thinned second portion of the first silicide layer is a side portion of the first silicide layer.

12 . The method of claim 1 , wherein the metal contact has a bottom surface lower than a topmost position of the first silicide layer.

13 . A method of forming a semiconductor device, comprising:

forming a multi-layer stack on a substrate, wherein the multi-layer stack comprises alternately stacked first semiconductor layers and second semiconductor layers;

etching the multi-layer stack and the substrate to form fin structures each comprising alternately stacked first nanostructures and second nanostructures;

forming a dummy gate stack across the fin structures;

forming epitaxial source/drain regions on opposite sides of the dummy gate stack;

forming a first silicide layer on one of the epitaxial source/drain regions, wherein the first silicide layer has a first silicide phase;

forming an interlayer dielectric (ILD) layer on the epitaxial source/drain regions and the dummy gate stack;

replacing the first nanostructures with a metal gate stack;

etching the ILD layer to expose the first silicide layer;

thinning a first portion of the first silicide layer, while leaving a second portion of the first silicide layer un-thinned, wherein thinning the first portion of the first silicide layer is performed such that the epitaxial source/drain regions are exposed;

forming a second silicide layer on the epitaxial source/drain regions having a second silicide phase different from the first silicide phase; and

forming a metal contact on the first silicide layer.

14 . The method of claim 13 , wherein the second silicide phase has a contact resistance lower than a contact resistance of the first silicide phase.

15 . The method of claim 13 , wherein the first silicide phase is a C49-TiSi 2 phase or a C54-TiSi 2 phase.

16 . The method of claim 13 , wherein the second silicide phase is a Ti 5 Si 4 phase.

17 . The method of claim 13 , wherein during annealing the first silicide layer, the first silicide layer has a side portion having a silicide phase being substantially intact.

18 . A semiconductor device, comprising:

a fin structure protruding from a substrate;

a gate stack crossing the fin structure;

epitaxial source/drain regions on opposite sides of the gate stack;

a first silicide layer covering a top of at least one of the epitaxial source/drain regions, wherein the first silicide layer has a bottom surface lower than a top surface of the epitaxial source/drain regions;

a second silicide layer along a sidewall of the at least one of the epitaxial source/drain regions, wherein the second silicide layer and the first silicide layer are different in thickness or in silicide phase; and

a source/drain contact over the first silicide layer.

19 . The semiconductor device of claim 18 , wherein the first silicide layer and the second silicide layer have a thickness difference in a range from about 1 nm to about 5 nm.

20 . The semiconductor device of claim 18 , wherein the first silicide layer has a contact resistance lower than a contact resistance of the second silicide layer.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 4, 2023
From: LIN, TA-CHUN; CHEN, YI-HSIEN; HUANG, CHI; TSAO, CHIH-PIN; LIANG, CHUN-SHENG; CHANG, CHIH-HAO
To: TAIWAN SEMICONDUCTOR MANUFACTURING COMPANY, LTD.
Reel/Frame 062273/0649 →
Continuity (1)
Related Publication 20240222431A1 · Jul 4, 2024
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