IP Library › Granted Patent US 10,109,709
Granted Patent B2
US 10,109,709 · App. 14/829,797 · Granted Oct 23, 2018

P-FET with strained silicon-germanium channel

Inventors: Kangguo Cheng (Schenectady, NY); Ali Khakifirooz (Los Altos, CA); Alexander Reznicek (Troy, NY); Ghavam G. Shahidi (Pound Ridge, NY)
Assignee: International Business Machines Corporation
H01L29/0669H01L21/823807H01L21/823821H01L21/84H01L21/845H01L27/092H01L27/0924H01L27/1203H01L27/1211H01L29/0676H01L29/1079H01L29/161H01L29/42392H01L29/66545H01L29/785H01L29/78696H01L21/823431
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Quick Facts
Patent No.
US 10,109,709
App. No.
14/829,797
Granted
Oct 23, 2018
Kind
B2
Abstract

A method of forming a semiconductor structure includes forming a dummy gate above a semiconductor substrate. The dummy gate defines a source-drain region adjacent to the dummy gate and a channel region below the dummy gate. A silicon-germanium layer is epitaxially grown above the source-drain region with a target concentration of germanium atoms. The semiconductor structure is annealed to diffuse the germanium atoms from the silicon-germanium layer into the channel region to form a silicon-germanium channel region.

Claims (34)

1. A semiconductor structure comprising:

a p-FET device in a p-FET region of a semiconductor substrate, the p-FET device comprising:

a metal gate perpendicular to and above the semiconductor substrate, a portion of the semiconductor substrate below the metal gate defines a channel region, a recessed portion of the semiconductor substrate not covered by the metal gate defines a source-drain region,

wherein the semiconductor substrate comprises a nanowire of a nanowire FET, and the metal gate surrounds the nanowire,

wherein a top surface of the channel region is above a top surface of the source-drain region and the source-drain region is in direct contact with a portion of a sidewall of the channel region,

wherein the channel region and the source-drain region comprise silicon-germanium with a homogenous distribution of germanium atoms; and

a p-doped epitaxial layer above and in direct contact with the source-drain region and in direct contact with a portion of the sidewall of the channel region, the p-doped epitaxial layer comprising epitaxially grown boron-doped silicon-germanium or boron-doped silicon, wherein the p-doped epitaxial layer and the source-drain region define a raised source-drain region; and

an n-FET device in an n-FET region of the semiconductor substrate, the n-FET device including a silicon only channel region, wherein dimensions of the channel region of the p-FET device are substantially the same as dimensions of the silicon channel region of the n-FET device.

2. The structure of claim 1 , wherein the channel region has substantially unvarying dimensions.

3. The structure of claim 1 , wherein a concentration of germanium atoms in the channel region and a concentration of germanium atoms in the source-drain region ranges from approximately 25% to approximately 45%.

4. The structure of claim 1 , further comprising:

a gate dielectric layer separating the metal gate from the channel region.

5. The structure of claim 1 , further comprising:

a pair of sidewall spacers disposed on opposite sidewalls of the metal gate, the pair of sidewall spacers being separated from the metal gate by a gate dielectric layer, and a combined width of the pair of sidewall spacers, the gate dielectric layer, and the metal gate is equal to a length of the channel region.

6. The structure of claim 1 , wherein a width of the metal gate is less than a length of the channel region.

7. The structure of claim 1 , wherein the metal gate comprises titanium nitride (TiN), tungsten nitride (WN), tantalum nitride (TaN) or some combination thereof.

8. The structure of claim 1 , wherein the nanowire portion of the substrate is above and does not contact a buried oxide layer of the semiconductor substrate.

9. A semiconductor structure comprising:

a p-FET device in a p-FET region of a semiconductor substrate, the p-FET device comprising:

a metal gate perpendicular to and above the semiconductor substrate, a portion of the semiconductor substrate below the metal gate defines a channel region, a recessed portion of the semiconductor substrate not covered by the metal gate defines a source-drain region,

wherein the semiconductor substrate comprises a fin, and the metal gate is around the fin,

wherein a top surface of the channel region is above a top surface of the source-drain region and the source-drain region is in direct contact with a portion of a sidewall of the channel region,

wherein the channel region and the source-drain region comprise silicon-germanium with a homogenous distribution of germanium atoms; and

a p-doped epitaxial layer above and in direct contact with the source-drain region and in direct contact with a portion of the sidewall of the channel region, the p-doped epitaxial layer comprising epitaxially grown boron-doped silicon-germanium or boron-doped silicon, wherein the p-doped epitaxial layer and the source-drain region define a raised source-drain region; and

an n-FET device in an n-FET region of the semiconductor substrate, the n-FET device including a silicon only channel region, wherein dimensions of the channel region of the p-FET device are substantially the same as dimensions of the silicon channel region of the n-FET device.

10. The structure of claim 9 , wherein the channel region has substantially unvarying dimensions.

11. The structure of claim 9 , wherein a concentration of germanium atoms in the channel region and a concentration of germanium atoms in the source-drain region ranges from approximately 25% to approximately 45%.

12. The structure of claim 9 , further comprising:

a gate dielectric layer separating the metal gate from the channel region.

13. The structure of claim 9 , further comprising:

a pair of sidewall spacers disposed on opposite sidewalls of the metal gate, the pair of sidewall spacers being separated from the metal gate by a gate dielectric layer, and a combined width of the pair of sidewall spacers, the gate dielectric layer, and the metal gate is equal to a length of the channel region.

14. The structure of claim 9 , wherein a width of the metal gate is less than a length of the channel region.

15. The structure of claim 9 , wherein the metal gate comprises titanium nitride (TiN), tungsten nitride (WN), tantalum nitride (TaN) or some combination thereof.

16. The structure of claim 9 , wherein the nanowire portion of the substrate is above and does not contact a buried oxide layer of the semiconductor substrate.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 19, 2015
From: CHENG, KANGGUO; KHAKIFIROOZ, ALI; REZNICEK, ALEXANDER; SHAHIDI, GHAVAM G.
To: INTERNATIONAL BUSINESS MACHINES CORPORATION
Reel/Frame 036358/0135 →
Continuity (2)
Division 14219067 · Mar 19, 2014
Related Publication 20150357411A1 · Dec 10, 2015