IP Library › Granted Patent US 8,847,283
Granted Patent B2
US 8,847,283 · App. 13/968,828 · Granted Sep 30, 2014

Compound semiconductor device and method of manufacturing the same

Inventors: Youichi Kamada (Yamato, JP); Kenji Kiuchi (Aizuwakamatsu, JP)
Assignee: Transphorm Japan, Inc.
H01L29/778H02M2001/007H01L29/66462H02M7/04H02M3/33576
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Quick Facts
Patent No.
US 8,847,283
App. No.
13/968,828
Granted
Sep 30, 2014
Kind
B2
Abstract

An AlGaN/GaN HEMT includes: a compound semiconductor layer; a source electrode and a drain electrode formed on an upper side of the compound semiconductor layer; and an Al—Si—N layer being a high-resistance layer disposed in a lower portion of at least one of the source electrode and the drain electrode and higher in an electric resistance value than the source electrode and the drain electrode.

Claims (58)

1. A compound semiconductor device comprising:

a compound semiconductor layer;

a first electrode and a second electrode formed on an upper side of the compound semiconductor layer; and

a high-resistance layer disposed in a lower portion of the first electrode and higher in an electric resistance value than other portions of the first electrode; wherein

the high-resistance layer has a portion containing 80% Al or more.

2. A compound semiconductor device comprising:

a compound semiconductor layer;

a first electrode and a second electrode formed on an upper side of the compound semiconductor layer; and

a high-resistance layer disposed in a lower portion of the first electrode and higher in an electric resistance value than the other portions of the first electrode; wherein

in the high-resistance layer, an Al content ratio gradually decreases from a value equal to or higher than 80% from an electrode end distant from the second electrode toward an electrode end close to the second electrode.

3. A method of manufacturing a compound semiconductor device comprising:

forming a compound semiconductor layer; and

forming a first electrode and a second electrode on an upper side of the compound semiconductor layer; wherein

a high-resistance layer higher in an electric resistance value than the other portions of the first electrode is formed in a lower portion of the first electrode; and

the high-resistance layer has a portion containing 80% Al or more.

4. A method of manufacturing a compound semiconductor device comprising:

forming a compound semiconductor layer; and

forming a first electrode and a second electrode on an upper side of the compound semiconductor layer; wherein

a high-resistance layer higher in an electric resistance value than the other portions of the first electrode is formed in a lower portion of the first electrode; and

in the high-resistance layer, an Al content ratio gradually decreases from a value equal to or higher than 80% from an electrode end distant from the second electrode toward an electrode end close to the second electrode.

5. A power supply circuit comprising:

a transformer; and

a high-voltage circuit and a low-voltage circuit sandwiching the transformer, the high-voltage circuit comprising a transistor, the transistor comprising:

a compound semiconductor layer;

a first electrode and a second electrode formed on an upper side of the compound semiconductor layer; and

a high-resistance layer disposed in a lower portion of the first electrode and higher in an electric resistance value than the other portions of the first electrode; wherein

the high-resistance layer has a portion containing 80% Al or more.

6. The compound semiconductor device according to claim 1 , wherein the high-resistance layer contains an Al x —Si y —N z compound that satisfies

x+y+z= 1

and

0< x <1.

7. The compound semiconductor device according to claim 1 , the first electrode having a first electrode end and a second electrode end, the first electrode end being closer to the second electrode than the second electrode end, wherein the high-resistance layer is locally provided in the first electrode end.

8. The method of manufacturing the compound semiconductor device according to claim 3 , wherein the high-resistance layer contains an Al x —Si y —N z compound that satisfies

x+y+z= 1

and

0 <x <1.

9. The method of manufacturing the compound semiconductor device according to claim 3 , the first electrode having a first electrode end and a second electrode end, the first electrode end being closer to the second electrode than the second electrode end, wherein the high-resistance layer is locally provided in the first electrode end.

10. The power supply circuit of claim 5 , wherein in the high-resistance layer, an Al content ratio gradually decreases from a value equal to or higher than 80% from an electrode end distant from the second electrode toward an electrode end close to the second electrode.

11. The power supply circuit of claim 10 , wherein the compound semiconductor layer comprises a material layer selected from the group consisting of AlN, AlGaN, and GaN.

12. The power supply circuit of claim 10 , wherein the high-resistance layer contains an Al x —Si y —N z compound that satisfies

x+y+z= 1

and

0< x <1.

13. The power supply circuit of claim 10 , the first electrode having a first electrode end and a second electrode end, the first electrode end being closer to the second electrode than the second electrode end, wherein the high-resistance layer is locally provided in the first electrode end.

14. The compound semiconductor device according to claim 1 , wherein the compound semiconductor layer comprises a material layer selected from the group consisting of AlN, AlGaN, and GaN.

15. The compound semiconductor device according to claim 2 , wherein the compound semiconductor layer comprises a material layer selected from the group consisting of AlN, AlGaN, and GaN.

16. The compound semiconductor device according to claim 2 , wherein the high-resistance layer contains an Al x —Si y —N z compound that satisfies

x+y+z= 1

and

0< x <1.

17. The compound semiconductor device according to claim 2 , the first electrode having a first electrode end and a second electrode end, the first electrode end being closer to the second electrode than the second electrode end, wherein the high-resistance layer is locally provided in the first electrode end.

18. The method of manufacturing the compound semiconductor device according to claim 3 , wherein the compound semiconductor layer comprises a material layer selected from the group consisting of AlN, AlGaN, and GaN.

19. The method of manufacturing the compound semiconductor device according to claim 4 , wherein the compound semiconductor layer comprises a material layer selected from the group consisting of AlN, AlGaN, and GaN.

20. The method of manufacturing the compound semiconductor device according to claim 4 , wherein the high-resistance layer contains an Al x —Si y —N z compound that satisfies

x+y+z= 1

and

0< x <1.

21. The method of manufacturing the compound semiconductor device according to claim 4 , the first electrode having a first electrode end and a second electrode end, the first electrode end being closer to the second electrode than the second electrode end, wherein the high-resistance layer is locally provided in the first electrode end.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 9, 2014
From: FUJITSU SEMICONDUCTOR LIMITED; FUJITSU LIMITED
To: TRANSPHORM JAPAN, INC.
Reel/Frame 032865/0218 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 4, 2013
From: KAMADA, YOUICHI; KIUCHI, KENJI
To: FUJITSU LIMITED; FUJITSU SEMICONDUCTOR LIMITED
Reel/Frame 031137/0369 →
Priority Claims (1)
JP 2012-217621 · Sep 28, 2012 · national
Continuity (1)
Related Publication 20140092635A1 · Apr 3, 2014