IP Library › Granted Patent US 9,680,142
Granted Patent B2
US 9,680,142 · App. 13/382,607 · Granted Jun 13, 2017

Polyolefin microporous membrane, separator for non-aqueous secondary battery, non-aqueous secondary battery and method of producing polyolefin microporous membrane

Inventors: Hiroki Sano (Iwakuni, JP); Satoshi Nishikawa (Iwakuni, JP); Takashi Yoshitomi (Iwakuni, JP)
Assignee: TEIJIN LIMITED
H01M2/1653B29C47/0021H01M2/166H01M2/1686B29C47/8845B29C47/8895
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Quick Facts
Patent No.
US 9,680,142
App. No.
13/382,607
Granted
Jun 13, 2017
Kind
B2
Abstract

A polyolefin microporous membrane, the membrane having, when measured by DSC, a degree of crystallinity of from 65 to 85%, a lamellar crystal/crystal ratio of from 30 to 85%, a crystal length of from 5 nm to 50 nm and an amorphous length of from 3 nm to 30 nm, and a polyolefin microporous membrane, the membrane having, when measured by X-ray diffractometry, crystal size of from 12.5 nm to 13.5 nm and a degree of crystallinity of from 64 to 68%.

Claims (28)

1. A polyolefin microporous membrane, the membrane having, when measured by X-ray diffractometry, a crystal size of from 12.5 nm to 13.5 nm and a degree of crystallinity of from 64 to 68%, the crystal size being a size of a lamellar crystal of a polyolefin in the polyolefin microporous membrane.

2. The polyolefin microporous membrane according to claim 1 , which comprises a polyolefin including an ultra-high molecular weight polyethylene having a weight-averaged molecular weight of 1,000,000 or higher and a high-density polyethylene having a density of 0.942 g/cm 3 .

3. The polyolefin microporous membrane according to claim 1 , which is produced by

a process of preparing a polyolefin solution by kneading from 1 to 35 parts by mass of polyolefin and from 65 to 99 parts by mass of mixed solvent including a volatile solvent and a nonvolatile solvent;

a process of forming a gel composition by extruding the polyolefin solution through a die at a temperature equal to or greater than a melting point of the polyolefin and no more than 60° C. higher than the melting point of the polyolefin, followed by cooling at a cooling rate of from 30° C./min to 150° C./min;

a process of removing the volatile solvent from the gel composition;

a process of drawing the gel composition; and

a process of removing the nonvolatile solvent from the gel composition.

4. A separator for a non-aqueous secondary battery, the separator comprising:

the polyolefin microporous membrane according to claim 1 ; and

a heat resistant porous layer including a heat resistant resin disposed on one side or both sides of the polyolefin microporous membrane.

5. The separator for a non-aqueous secondary battery according to claim 4 , wherein the heat resistant resin is at least one resin selected from the group consisting of fully aromatic polyamides, polyimides, polyamide imides, polysulfones, polyketones, polyetherketones, polyether imides and cellulose.

6. The separator for a non-aqueous secondary battery according to claim 4 , wherein the heat resistant porous layer includes an inorganic filler.

7. The separator for a non-aqueous secondary battery according to claim 6 , wherein the inorganic filler is aluminum hydroxide or magnesium hydroxide.

8. A non-aqueous secondary battery, the battery comprising a positive electrode, a negative electrode and the separator for a non-aqueous secondary battery according to claim 4 disposed between the positive electrode and the negative electrode, wherein an electromotive force is obtained by doping and dedoping lithium.

9. A separator for a non-aqueous secondary battery, the separator comprising:

the polyolefin microporous membrane according to claim 1 ; and

an adhesive porous layer including a vinylidene fluoride resin disposed on one side or both sides of the polyolefin microporous membrane.

10. The separator for a non-aqueous secondary battery according to claim 9 , wherein the vinylidene fluoride resin is at least one selected from the group consisting of

(i) polyvinylidene fluoride; and

(ii) a copolymer of a vinylidene fluoride and at least one selected from the group consisting of hexafluoropropylene, chlorotrifluoroethylene, hexafluoroethylene and ethylene.

11. A non-aqueous secondary battery, the battery comprising a positive electrode, a negative electrode and the polyolefin microporous membrane according to claim 1 disposed between the positive electrode and the negative electrode, wherein an electromotive force is obtained by doping and dedoping lithium.

12. A method of producing a polyolefin microporous membrane according to claim 1 , the method comprising:

a process of preparing a polyolefin solution by kneading from 1 to 35 parts by mass of polyolefin and from 65 to 99 parts by mass of mixed solvent including a volatile solvent and a nonvolatile solvent;

a process of forming a gel composition by extruding the polyolefin solution through a die at a temperature equal to or greater than a melting point of the polyolefin and no more than 60° C. higher than the melting point of the polyolefin, followed by cooling at a cooling rate of from 30° C./min to 150° C./min;

a process of removing the volatile solvent from the gel composition;

a process of drawing the gel composition; and

a process of removing the nonvolatile solvent from the gel composition.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 24, 2026
From: TEIJIN LIMITED
To: JIANGSU ADVANCED MATERIAL TECH CO., LTD
Reel/Frame 076131/0453 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 9, 2012
From: SANO, HIROKI; NISHIKAWA, SATOSHI; YOSHITOMI, TAKASHI
To: TEIJIN LIMITED
Reel/Frame 027499/0968 →
Priority Claims (2)
JP 2010-066116 · Mar 23, 2010 · national
JP 2010-066117 · Mar 23, 2010 · national
Continuity (1)
Related Publication 20120115008A1 · May 10, 2012