IP Library Granted Patent US 8,362,557
Granted Patent B2
US 8,362,557 · App. 12/629,362 · Granted Jan 29, 2013

Stepped-source LDMOS architecture

Inventor: Jun Cai (Scarborough, ME)
Assignee: Fairchild Semiconductor Corporation
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Quick Facts
Patent No.
US 8,362,557
App. No.
12/629,362
Granted
Jan 29, 2013
Kind
B2
Abstract

A semiconductor device can include a source region near a working top surface of a semiconductor region. The device can also include a gate located above the working top surface and located laterally between the source and a drain region. The source region and the gate can at least partially laterally overlap a body region near the working top surface. The source region can include a first portion having the first conductivity type, a second portion having a second conductivity type, and a third portion having the second conductivity type. The second portion can be located laterally between the first and third portions and can penetrate into the semiconductor region to a greater depth than the third portion but no more than the first portion. The lateral location of the third portion can be determined at least in part using the lateral location of the gate.

Claims (50)

1. A semiconductor device, comprising:

a source region near a working top surface of a semiconductor region;

a drain region near the working top surface and laterally offset from the source region;

a gate located above the working top surface and located laterally between the source and drain regions; and

wherein the source region and the gate at least partially laterally overlap a body region near the working top surface;

wherein the semiconductor region comprises a first conductivity type having a first doping profile; and

wherein the body region comprises the first conductivity type having a second doping profile;

wherein the source region comprises:

a first portion having the first conductivity type having a third doping profile, a second portion having a second conductivity type having a fourth doping profile, and a third portion having the second conductivity type having a fifth doping profile;

wherein the second portion is located laterally between the first and third portions and penetrates into the semiconductor region to a greater depth than the third portion but no more than the first portion; and

wherein the lateral location of the third portion is determined at least in part using the lateral location of the gate.

2. The semiconductor device of claim 1 , wherein the semiconductor region includes a semiconductor substrate.

3. The semiconductor device of claim 1 , wherein the first conductivity type is n type and the second conductivity type is p type.

4. The semiconductor device of claim 1 , wherein the fourth doping profile corresponds to the fifth doping profile.

5. The semiconductor device of claim 1 , wherein a third doping profile peak concentration is greater than a second doping profile peak concentration.

6. The semiconductor device of claim 5 , wherein the third doping profile is more highly doped with respect to the first doping profile and the second doping profile.

7. The semiconductor device of claim 1 , wherein the gate includes a polysilicon portion and a first oxide spacer at the lateral edge of the gate near the source region, and wherein the lateral location of the third portion of the source region is determined at least in part using the lateral location of the first oxide spacer.

8. The semiconductor device of claim 7 , wherein a channel length of the gate along the working top surface is determined at least in part by the width of the first oxide spacer and the lateral location of the third portion of the source region.

9. The semiconductor device of claim 7 , wherein the width of the polysilicon portion includes a tapered portion and gets narrower near the working top surface of the semiconductor region.

10. The semiconductor device of claim 7 , wherein the gate includes a second oxide spacer extending laterally from the first oxide spacer, and wherein the lateral location of the second portion of the source region is determined at least in part using the lateral location of the second oxide spacer.

11. The semiconductor device of claim 10 , wherein a gate-to-source capacitance (Cgs) is controlled at least in part using a lateral thickness of at least one of the first or second oxide spacers.

12. The semiconductor device of claim 10 , comprising:

a first silicide region above the first and second portions of the source region;

a second silicide region on top of the gate; and

wherein the lateral location of the first silicide region is determined at least in part using the second oxide spacer.

13. The semiconductor device of claim 1 , wherein the semiconductor region comprises a well region having the first conductivity type within a semiconductor substrate having the second conductivity type.

14. The semiconductor device of claim 1 , wherein the body region at least partially surrounds the first, second, and third portions of the source region.

15. The semiconductor device of claim 14 , wherein the body region penetrates into the semiconductor region to a depth greater than the first, second, and third portions of the source region.

16. The semiconductor device of claim 1 , comprising a drift region located laterally between the gate and the drain region and at least partially overlapping with the gate and drain regions, and wherein the drift region includes the second conductivity type.

17. The semiconductor device of claim 16 , wherein the drain region includes the second conductivity type having a sixth doping profile, and wherein a peak doping concentration of the sixth doping profile is greater than a peak doping concentration of a drift region doping profile.

18. The semiconductor device of claim 16 , wherein the drift region includes a shallow portion including the second conductivity type having a peak doping concentration greater than an average drift region doping concentration, wherein the shallow portion extends laterally from the drain region toward the gate.

19. The semiconductor device of claim 18 , wherein the gate includes a polysilicon portion and a first oxide spacer at the lateral edge of the gate, wherein the lateral location of an upper portion of the shallow portion of the drift region near the first oxide spacer is determined at least in part by the location of the first oxide spacer, and wherein the shallow portion includes a lower portion extending further under the lateral edge of the gate than the upper portion.

20. The semiconductor device of claim 19 , wherein a difference between the lateral position of the upper and lower portions of the shallow portion of the drift region is determined at least in part by boron segregation and configured to increase a drain-to-source breakdown voltage when the semiconductor device is in an off-state.

21. The semiconductor device of claim 18 , wherein the drift region comprises a deep portion located at a greater depth within the semiconductor region than the shallow region, the deep portion including the second conductivity type having a peak doping concentration less than the average drift region doping concentration, wherein the deep portion extends laterally from the drain region toward the gate but not as far as the shallow portion, and wherein the shallow and deep portions are vertically separated along at least a portion of their overlapping width by a region of the first conductivity type in the lateral region extending from the gate toward the drain region.

22. A semiconductor device, comprising:

a source region near a working top surface of a semiconductor region;

a drain region near the working top surface and laterally offset from the source region;

a gate located above the working top surface and located laterally between the source and drain regions; and

wherein the source region and the gate at least partially laterally overlap a body region near the working top surface;

wherein the semiconductor region comprises a first conductivity type having a first doping profile;

wherein the body region comprises the first conductivity type having a second doping profile;

wherein the source region comprises:

a first portion having the first conductivity type having a third doping profile, a second portion having a second conductivity type having a fourth doping profile, and a third portion having the second conductivity type having a fifth doping profile;

wherein the second portion is located laterally between the first and third portions and penetrates into the semiconductor region to a greater depth than the third portion but no more than the first portion; and

wherein the lateral location of the third portion is determined at least in part using the lateral location of the gate;

wherein the fourth doping profile corresponds to the fifth doping profile;

wherein a third doping profile peak concentration is greater than a second doping profile peak concentration;

wherein the first conductivity type is n type and the second conductivity type is p type; and

wherein the gate includes a polysilicon portion and a first oxide spacer at the lateral edge of the gate near the source region, and wherein the lateral location of the third portion of the source region is determined at least in part using the lateral location of the first oxide spacer.

23. The semiconductor device of claim 22 , wherein the gate includes a second oxide spacer extending laterally from the first oxide spacer, and wherein the lateral location of the second portion of the source region is determined at least in part using the lateral location of the second oxide spacer.

Assignments (7)
RELEASE OF SECURITY INTEREST IN PATENTS RECORDED AT REEL 058871, FRAME 0799 Recorded Jun 23, 2023
From: DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT
To: SEMICONDUCTOR COMPONENTS INDUSTRIES, LLC; FAIRCHILD SEMICONDUCTOR CORPORATION
Reel/Frame 065653/0001 →
RELEASE OF SECURITY INTEREST IN PATENTS RECORDED AT REEL 040075, FRAME 0644 Recorded Jun 22, 2023
From: DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT
To: SEMICONDUCTOR COMPONENTS INDUSTRIES, LLC; FAIRCHILD SEMICONDUCTOR CORPORATION
Reel/Frame 064070/0536 →
SECURITY INTEREST Recorded Nov 12, 2021
From: SEMICONDUCTOR COMPONENTS INDUSTRIES, LLC
To: DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT
Reel/Frame 058871/0799 →
RELEASE OF SECURITY INTEREST Recorded Oct 28, 2021
From: DEUTSCHE BANK AG NEW YORK BRANCH
To: FAIRCHILD SEMICONDUCTOR CORPORATION
Reel/Frame 057969/0206 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 3, 2021
From: FAIRCHILD SEMICONDUCTOR CORPORATION
To: SEMICONDUCTOR COMPONENTS INDUSTRIES, LLC
Reel/Frame 057694/0374 →
PATENT SECURITY AGREEMENT Recorded Sep 19, 2016
From: FAIRCHILD SEMICONDUCTOR CORPORATION
To: DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT
Reel/Frame 040075/0644 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 24, 2010
From: CAI, JUN
To: FAIRCHILD SEMICONDUCTOR CORPORATION
Reel/Frame 023983/0372 →
Continuity (1)
Related Publication 20110127607A1 · Jun 2, 2011