IP Library › Granted Patent US 11,450,589
Granted Patent B2
US 11,450,589 · App. 16/634,409 · Granted Sep 20, 2022

Heat-conductive sheet, mounting method using same and bonding method using same

Inventors: Setsuo Kikuchi (Aichi, JP); Takumi Kataishi (Aichi, JP)
Assignee: Fuji Polymer Industries Co., Ltd.
H01L23/3737C09J5/00C09J7/25C09J7/38C09K5/14H01L21/4882C09J183/04C09J2203/326C09J2483/00C09J2483/006Y10T428/26Y10T428/31663
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Quick Facts
Patent No.
US 11,450,589
App. No.
16/634,409
Granted
Sep 20, 2022
Kind
B2
Abstract

A heat conductive sheet of the present invention is a heat conductive sheet containing a curing reaction catalyst, wherein a heat conductive uncured composition 2 not containing a curing reaction catalyst is joined to at least one principal surface of the heat conductive sheet 1 containing a curing reaction catalyst. The heat conductive sheet 1 containing a curing reaction catalyst contains the curing reaction catalyst in an amount necessary to cure the heat conductive uncured composition. A mounting method of the present invention includes: joining a heat conductive uncured composition 2 not containing a curing reaction catalyst to at least one principal surface of the heat conductive sheet 1 containing a curing reaction catalyst, and curing the heat conductive uncured composition by diffusion of the curing reaction catalyst contained in the heat conductive sheet 1 . Thereby, the heat conductive uncured composition can be joined to the heat conductive sheet immediately before mounting to an electronic component or the like, easily follow the unevenness of a heat generating part and/or heat dissipating part, and cure after mounting.

Claims (38)

1. A heat conductive member comprising a heat conductive sheet containing a curing reaction catalyst and a heat conductive uncured composition not containing a curing reaction catalyst,

wherein the heat conductive uncured composition not containing a curing reaction catalyst is joined to at least one principal surface of the heat conductive sheet containing thea curing reaction catalyst,

the heat conductive sheet containing the curing reaction catalyst contains the curing reaction catalyst in an amount necessary to cure the heat conductive uncured composition, and

the heat conductive uncured composition comprises:

(A) base polymer component: 100 parts by weight of linear organopolysiloxane having an average of two or more alkenyl groups per molecule, in which the alkenyl groups are bonded to silicon atoms at both ends of the molecular chain;

(B) crosslinking component: less than 1 mol of organohydrogenpolysiloxane having an average of two or more hydrogen atoms bonded to silicon atoms per molecule, with respect to 1 mol of the alkenyl groups bonded to the silicon atoms contained in the component A; and

(C) heat conductive particles: 100 to 3000 parts by weight with respect to 100 parts by weight of the component A;

wherein a heat conductive filler is mixed in the heat conductive sheet containing the curing reaction catalyst and heat conductivity across the heat conductive member is 0.5 W/mk or more.

2. The heat conductive member according to claim 1 , wherein the amount of the curing reaction catalyst in the heat conductive sheet is 1 ppm to 3500 ppm.

3. The heat conductive member according to claim 1 , wherein the curing reaction catalyst is a platinum group metal catalyst.

4. The heat conductive member according to claim 1 , wherein the heat conductive sheet containing the curing reaction catalyst is at least one selected from a silicone rubber sheet, a silicone gel sheet, a natural rubber sheet, a synthetic rubber sheet, and a paraffin sheet.

5. The heat conductive member according to claim 1 , wherein a thickness of the heat conductive sheet containing the curing reaction catalyst is 0.1 mm to 1.5 mm.

6. The heat conductive member according to claim 1 , wherein the heat conductive uncured composition cures by an addition reaction or a condensation reaction.

7. The heat conductive member according to claim 1 , wherein the heat conductive uncured composition has tackiness after curing.

8. The heat conductive member according to claim 1 , wherein the heat conductive uncured composition is at least one selected from uncured silicone rubber, uncured silicone gel, uncured silicone grease, uncured silicone oil, and uncured adhesive silicone rubber.

9. The heat conductive member according to claim 1 , wherein the heat conductive uncured composition is in a form of a putty sheet or a ribbon, or in a state extruded from at least one container selected from a dispenser, a syringe, and a tube.

10. A mounting method using the heat conductive member according to claim 1 , comprising:

joining the heat conductive uncured composition not containing a curing reaction catalyst to at least one surface of the heat conductive sheet containing the curing reaction catalyst; and

curing the heat conductive uncured composition by diffusion of the curing reaction catalyst from the heat conductive sheet into the heat conductive uncured composition,

wherein the heat conductive uncured composition comprises:

(A) base polymer component: 100 parts by weight of linear organopolysiloxane having an average of two or more alkenyl groups per molecule, in which the alkenyl groups are bonded to silicon atoms at both ends of the molecular chain;

(B) crosslinking component: less than 1 mol of organohydrogenpolysiloxane having an average of two or more hydrogen atoms bonded to silicon atoms per molecule, with respect to 1 mol of the alkenyl groups bonded to the silicon atoms contained in the component A; and

(C) heat conductive particles: 100 to 3000 parts by weight with respect to 100 parts by weight of the component A;

wherein a heat conductive filler is mixed in the heat conductive sheet containing the curing reaction catalyst and heat conductivity across the heat conductive member is 0.5 W/m·k or more.

11. The mounting method according to claim 10 , comprising joining the heat conductive uncured composition not containing a curing reaction catalyst to at least one surface of the heat conductive sheet containing the curing reaction catalyst, and then incorporating the heat conductive member into an electrical or electronic component.

12. The mounting method according to claim 10 , comprising joining the heat conductive uncured composition not containing a curing reaction catalyst to an electrical or electronic component and then pressure-bonding the heat conductive uncured composition to at least one surface of the heat conductive sheet containing the curing reaction catalyst.

13. The mounting method according to claim 10 , comprising joining the heat conductive sheet containing the curing reaction catalyst to an electrical or electronic component, and then pressure-bonding the heat conductive sheet to the heat conductive uncured composition not containing a curing reaction catalyst.

14. The mounting method according to claim 10 , wherein a time to cure the heat conductive uncured composition is 4 hours to 48 hours at a room temperature of 25° C.

15. The mounting method according to claim 10 , wherein the heat conductive uncured composition is supplied to a mounting process in a form of a putty sheet or a ribbon, or in a state of being contained in a dispenser, a syringe, or a tube.

16. A joining method using the heat conductive member according to claim 1 , comprising:

joining the heat conductive uncured composition not containing a curing reaction catalyst to at least one surface of the heat conductive sheet containing the curing reaction catalyst;

joining the heat conductive uncured composition and an object in contact with the heat conductive uncured composition; and

curing the heat conductive uncured composition by diffusion of the curing reaction catalyst from the heat conductive sheet into the heat conductive uncured composition,

wherein the heat conductive uncured composition comprises:

(A) base polymer component: 100 parts by weight of linear organopolysiloxane having an average of two or more alkenyl groups per molecule, in which the alkenyl groups are bonded to silicon atoms at both ends of the molecular chain;

(B) crosslinking component: less than 1 mol of organohydrogenpolysiloxane having an average of two or more hydrogen atoms bonded to silicon atoms per molecule, with respect to 1 mol of the alkenyl groups bonded to the silicon atoms contained in the component A; and

(C) heat conductive particles: 100 to 3000 parts by weight with respect to 100 parts by weight of the component A;

wherein a heat conductive filler is mixed in the heat conductive sheet containing the curing reaction catalyst and heat conductivity across the heat conductive member is 0.5 W/m·k or more.

Assignments (2)
CHANGE OF ADDRESS Recorded Feb 6, 2023
From: FUJI POLYMER INDUSTRIES CO., LTD.
To: FUJI POLYMER INDUSTRIES CO., LTD.
Reel/Frame 062655/0927 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 27, 2020
From: KIKUCHI, SETSUO; KATAISHI, TAKUMI
To: FUJI POLYMER INDUSTRIES CO., LTD.
Reel/Frame 051632/0944 →
Priority Claims (1)
JP JP2018-089655 · May 8, 2018 · national
Continuity (1)
Related Publication 20200176350A1 · Jun 4, 2020