IP Library › Granted Patent US 10,351,728
Granted Patent B2
US 10,351,728 · App. 14/896,235 · Granted Jul 16, 2019

Thermosetting resin composition, method of producing thermal conductive sheet, and power module

Inventors: Mariko Takahara (Chiyoda-ku, JP); Kenji Mimura (Chiyoda-ku, JP); Yurie Nakamura (Chiyoda-ku, JP); Motoki Masaki (Chiyoda-ku, JP)
Assignee: MITSUBISHI ELECTRIC CORPORATION
C09D163/00B29C41/003B29C41/02C08K3/38C08L101/00H01L21/4871H01L23/36H01L23/3737H01L23/4334H01L23/49575H01L24/29B29K2101/10B29K2105/16B29K2509/04B29K2995/0013B29L2031/34C01B21/064C01B21/0648C08K2003/385C08K2201/016H01L2224/29499H01L2224/32245
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Quick Facts
Patent No.
US 10,351,728
App. No.
14/896,235
Granted
Jul 16, 2019
Kind
B2
Abstract

A thermosetting resin composition containing a thermosetting resin and an inorganic filler, in which the inorganic filler contains secondary sintered particles (A) formed of primary particles of boron nitride, which have an aspect ratio of 10 to 20, and secondary sintered particles (B) formed of the primary particles of boron nitride, which have an aspect ratio of 2 to 9. The thermosetting resin composition can produce a thermal conductive sheet that has excellent filling property of the inorganic filler, and excellent thermal conductivity, adhesiveness and electrical insulating properties.

Claims (39)

1. A thermosetting resin composition, containing

a thermosetting resin and

an inorganic filler,

wherein

the inorganic filler contains

secondary sintered particles (A), which are isotropic aggregates of primary particles of boron nitride which have an aspect ratio of 10 to 20, and

secondary sintered particles (B), which are isotropic aggregates of primary particles of boron nitride which have an aspect ratio of 2 to 9;

a specific surface area of the secondary sintered particles (A) is 4 m 2 /g to 15 m 2 /g; and

a specific surface area of the secondary sintered particles (B) is less than 4 m 2 /g.

2. A thermosetting resin composition, containing

a thermosetting resin and

an inorganic filler,

wherein

the inorganic filler contains

secondary sintered particles (A), which are isotropic aggregates of primary particles of boron nitride which have an aspect ratio of 10 to 20, and

secondary sintered particles (B), which are isotropic aggregates of primary particles of boron nitride which have an aspect ratio of 2 to 9;

a compressive strength of the secondary sintered particles (A) is 6 MPa or more; and

a compressive strength of the secondary sintered particles (B) is 3 MPa to 5 MPa.

3. The thermosetting resin composition according to claim 1 , wherein a ratio of an average particle size of the secondary sintered particles (A) to that of the secondary sintered particles (B) is 0.8 to 10.

4. A thermosetting resin composition, containing

a thermosetting resin and

an inorganic filler,

wherein

the inorganic filler contains

secondary sintered particles (A), which are isotropic aggregates of primary particles of boron nitride which have an aspect ratio of 10 to 20, and

secondary sintered particles (B), which are isotropic aggregates of primary particles of boron nitride which have an aspect ratio of 2 to 9; and

an average particle size of the secondary sintered particles (A) is 20 μm to 110 μm.

5. The thermosetting resin composition according to claim 1 , wherein an average length of the primary particles of boron nitride, which form the secondary sintered particles (A) and the secondary sintered particles (B), is 0.1 μm to 30 μm.

6. The thermosetting resin composition according to claim 1 , wherein a volume ratio of the secondary sintered particles (A) to the secondary sintered particles (B) is 5:95 to 90:10.

7. The thermosetting resin composition according to claim 1 , wherein a content of the inorganic filler in a solid content of the thermosetting resin composition is 40% by volume to 80% by volume.

8. A method of producing a thermal conductive sheet, the method comprising

coating and drying the thermosetting resin composition according to claim 1 on a mold-releasing base material to obtain a coated and dried material, and

curing the coated and dried material while pressurizing under a pressing pressure of 0.5 MPa to 50 MPa.

9. A power module, comprising

a power semiconductor element mounted on a first heat dissipation member,

a second heat dissipation member that externally dissipates heat generated by the power semiconductor element, and

the thermal conductive sheet that transmits the heat generated by the power semiconductor element from the first heat dissipation member to the second heat dissipation member and is produced according to the method according to claim 8 .

10. The power module according to claim 9 , wherein the power semiconductor element is formed of a wide band gap semiconductor.

11. The power module according to claim 10 , wherein the wide band gap semiconductor is silicon carbide, a gallium nitride-based material or diamond.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 4, 2015
From: TAKAHARA, MARIKO; MIMURA, KENJI; NAKAMURA, YURIE; MASAKI, MOTOKI
To: MITSUBISHI ELECTRIC CORPORATION
Reel/Frame 037216/0112 →
Priority Claims (1)
JP 2013-125480 · Jun 14, 2013 · national
Continuity (1)
Related Publication 20160115343A1 · Apr 28, 2016
Cited By (1)
US 12,580,437