IP Library Granted Patent US 9,748,186
Granted Patent B2
US 9,748,186 · App. 14/845,256 · Granted Aug 29, 2017

Semiconductor device and method for manufacturing the semiconductor device

Inventors: Fumihiko Momose (Nagano, JP); Takashi Saito (Matsumoto, JP); Kazumasa Kido (Matsumoto, JP); Yoshitaka Nishimura (Azumino, JP)
Assignee: FUJI ELECTRIC CO., LTD.
H01L24/05H01L24/03H01L24/43H01L24/45H01L24/48H01L24/73H01L24/85H01L24/29H01L2224/04042H01L2224/05124H01L2224/05541H01L2224/05624H01L2224/05647H01L2224/05655H01L2224/29101H01L2224/32225H01L2224/45124H01L2224/45147H01L2224/4851H01L2224/48091H01L2224/48227H01L2224/48724H01L2224/48747H01L2224/48755H01L2224/48824H01L2224/48847H01L2224/48855H01L2224/73265H01L2224/85H01L2224/85203H01L2224/85205H01L2924/2064
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Quick Facts
Patent No.
US 9,748,186
App. No.
14/845,256
Granted
Aug 29, 2017
Kind
B2
Abstract

A semiconductor device has a module structure in which a semiconductor element and a circuit layer are electrically connected to each other by a wire. A front metal layer is formed on a surface of a top side electrode of the semiconductor element and the wire is bonded to the front metal layer by wire bonding. The front metal layer has a higher hardness than the top side electrode or the wire. A bonding interface of the wire with the metal film has a recrystallization temperature that is equal to or higher than 175° C. According to this structure, it is possible to improve the power cycle resistance of the semiconductor device.

Claims (27)

1. A semiconductor device that is formed by electrically connecting an electrode of a semiconductor element and a wire using wire bonding, comprising:

a metal film that has a higher hardness than the wire and is provided on a surface of the electrode,

wherein the wire is bonded to the metal film by the wire bonding to provide a bonding interface, the bonding interface of the wire with the metal film has a recrystallization temperature that is higher than 175° C., and the semiconductor element has a bonding temperature that is less than the recrystallization temperature of the bonding interface, and

wherein the bonding interface of the wire has a crystal grain size that is only equal to or less than 15 μm, and a portion which is away from the bonding interface of the wire includes a crystal grain with a grain size greater than 15 μm.

2. The semiconductor device according to claim 1 , wherein the metal film is a nickel-plated film.

3. The semiconductor device according to claim 2 , wherein the nickel-plated film has a thickness ranging from 3 μm to 7 μm.

4. The semiconductor device according to claim 1 , wherein the metal film is a copper-plated film.

5. The semiconductor device according to claim 4 , wherein the copper-plated film has a thickness ranging from 4.5 μm to 10.5 μm.

6. The semiconductor device according to claim 1 , wherein the wire has a higher hardness than that of the electrode.

7. The semiconductor device according to claim 6 , wherein the metal film is a nickel-plated film.

8. The semiconductor device according to claim 7 , wherein the nickel-plated film has a thickness ranging from 3 μm to 7 μm.

9. The semiconductor device according to claim 6 , wherein the metal film is a copper-plated film.

10. The semiconductor device according to claim 9 , wherein the copper-plated film has a thickness ranging from 4.5 μm to 10.5 μm.

11. A method for manufacturing a semiconductor device according to claim 1 in which an electrode of a semiconductor element is electrically connected to a wire, comprising:

providing a metal film having a hardness that is higher than that of the wire on a surface of the electrode; and

bonding the wire to the metal film using ultrasonic vibration to provide a bonding interface having a crystal grain size that is only equal to or less than 15 μm.

12. The semiconductor device according to claim 1 , wherein the wire is made of an aluminum alloy including 0.2 to 2.0 mass % of iron and the balance aluminum with a purity of 99.99% or more.

13. The semiconductor device according to claim 1 , wherein the wire is directly connected to the metal film.

14. A semiconductor device that is formed by electrically connecting an electrode of a semiconductor element and a wire using wire bonding, comprising:

a metal film that is a copper film consisting of copper, that has a thickness ranging from 4.5 μm to 10.5 μm, that has a higher hardness than that of the wire, and that is provided on a surface of the electrode,

wherein the wire has a higher hardness than that of the electrode and is bonded to the metal film by the wire bonding to provide a bonding interface, and the bonding interface of the wire with the metal film has a recrystallization temperature that is higher than 175° C.

15. The semiconductor device according to claim 1 , wherein the bonding interface of the wire has a crystal grain size that is only equal to or less than 15 μm, and a portion which is away from the bonding interface of the wire includes a crystal grain with a grain size greater than 15 μm.

16. The semiconductor device according to claim 1 , wherein the wire is made of an aluminum alloy including 0.2 to 2.0 mass % of iron and the balance aluminum with a purity of 99.99% or more.

17. The semiconductor device according to claim 1 , wherein the wire is directly connected to the metal film.

18. A method for manufacturing a semiconductor device according to claim 15 in which an electrode of a semiconductor element is electrically connected to a wire, comprising:

providing a metal film having a hardness that is higher than that of the wire on a surface of the electrode; and

bonding the wire to the metal film using ultrasonic vibration to provide a bonding interface having a crystal grain size that is only equal to or less than 15 μm.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 3, 2015
From: MOMOSE, FUMIHIKO; SAITO, TAKASHI; KIDO, KAZUMASA; NISHIMURA, YOSHITAKA
To: FUJI ELECTRIC CO., LTD.
Reel/Frame 036492/0242 →
Priority Claims (1)
JP 2013-092110 · Apr 25, 2013 · national
Continuity (2)
Continuation PCTJP2014061457 · Apr 23, 2014
Related Publication 20150380368A1 · Dec 31, 2015