IP Library Granted Patent US 10,056,595
Granted Patent B2
US 10,056,595 · App. 14/342,875 · Granted Aug 21, 2018

Battery separator, and method for producing same

Inventors: Naoki Mizuno (Nasushiobara, JP); Michihiko Irie (Nasushiobara, JP); Ken Shimizu (Nasushiobara, JP)
Assignee: Toray Industries, Inc.
H01M2/1686H01M2/145H01M2/166H01M2/1646H01M2/1653H01M10/0525
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Quick Facts
Patent No.
US 10,056,595
App. No.
14/342,875
Granted
Aug 21, 2018
Kind
B2
Abstract

A battery separator includes a porous membrane A including a polyolefin resin, and a porous membrane B laminated thereon including a fluororesin and inorganic particles or cross-linked polymer particles, wherein the particles are contained in an amount of 80 wt % to 97 wt % of the porous membrane B and have an average diameter being not less than 1.5 times and less than 50 times the average pore size of the porous membrane A, and a specific expression 1 and a specific expression 2 are satisfied.

Claims (17)

1. A battery separator comprising: a porous membrane A comprising a polyolefin resin, and a porous membrane B laminated thereon comprising a fluororesin and inorganic particles or cross-linked polymer particles,

wherein the particles comprise 80 wt % to 97 wt % of the porous membrane B and have an average diameter being not less than 1.5 times and less than 50 times the average pore size of the porous membrane A, and the fluororesin infiltrates in trace amounts deep into pores of the porous membrane A, and infiltration in trace amounts is determined by Expression 1 and infiltration deep into pores is determined by Expression 2:

0.01≤absT (1200) ≤0.30  (1)

absT (1200) : infrared spectroscopic absorbance of an absorption having a peak at or near 1,200 cm −1 per 10 μm thickness of the porous membrane A, as measured by infrared spectroscopy (transmission method) after peeling the porous membrane B off the porous membrane A; and

0.001≤absR (1200) ≤0.030  (2)

absR (1200) : infrared spectroscopic absorbance of a maximum peak at or near 1,200 cm −1 , as measured by infrared spectroscopy (reflection method) on the surface of the porous membrane A that is opposite to the porous membrane B.

2. The battery separator according to claim 1 , wherein the inorganic particles are at least one selected from silica, titanium dioxide, and alumina.

3. The battery separator according to claim 1 , wherein the cross-linked polymer particles are at least one selected from cross-linked polystyrene particles, cross-linked acrylic resin particles, and cross-linked methyl methacrylate particles.

4. A method of producing the battery separator according to claim 1 , comprising (i) and (ii):

(i): Applying a coating solution (varnish) to the porous membrane A comprising a polyolefin resin, the coating solution comprising a fluororesin and inorganic particles or cross-linked polymer particles, wherein the concentration of the fluororesin in the solution component is 1 wt % to 3.5 wt %, and then passing the coated porous membrane A through a humidity-controlled zone at an absolute humidity of 5 g/m 3 or more but less than 10 g/m 3 for 3 seconds or more but less than 30 seconds to form a fluororesin membrane on the porous membrane A; and

(ii): Immersing the composite membrane obtained in (i), in which the fluororesin membrane is laminated, in a coagulation bath to convert the fluororesin membrane into a porous membrane B, and washing and drying the composite membrane to obtain a battery separator.

5. A method of producing the battery separator according to claim 2 , comprising (i) and (ii):

(i): Applying a coating solution (varnish) to the porous membrane A comprising a polyolefin resin, the coating solution comprising a fluororesin and inorganic particles or cross-linked polymer particles, wherein the concentration of the fluororesin in the solution component is 1 wt % to 3.5 wt %, and then passing the coated porous membrane A through a humidity-controlled zone at an absolute humidity of 5 g/m 3 or more but less than 10 g/m 3 for 3 seconds or more but less than 30 seconds to form a fluororesin membrane on the porous membrane A; and

(ii): Immersing the composite membrane obtained in (i), in which the fluororesin membrane is laminated, in a coagulation bath to convert the fluororesin membrane into a porous membrane B, and washing and drying the composite membrane to obtain a battery separator.

6. A method of producing the battery separator according to claim 3 , comprising (i) and (ii):

(i): Applying a coating solution (varnish) to the porous membrane A comprising a polyolefin resin, the coating solution comprising a fluororesin and inorganic particles or cross-linked polymer particles, wherein the concentration of the fluororesin in the solution component is 1 wt % to 3.5 wt %, and then passing the coated porous membrane A through a humidity-controlled zone at an absolute humidity of 5 g/m3 or more but less than 10 g/m3 for 3 seconds or more but less than 30 seconds to form a fluororesin membrane on the porous membrane A; and

(ii): Immersing the composite membrane obtained in (i), in which the fluororesin membrane is laminated, in a coagulation bath to convert the fluororesin membrane into a porous membrane B, and washing and drying the composite membrane to obtain a battery separator.

Assignments (2)
MERGER Recorded Jun 8, 2018
From: TORAY BATTERY SEPARATOR FILM CO., LTD.
To: TORAY INDUSTRIES, INC.
Reel/Frame 046325/0736 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 16, 2014
From: MIZUNO, NAOKI; IRIE, MICHIHIKO; SHIMIZU, KEN
To: TORAY BATTERY SEPARATOR FILM CO., LTD.
Reel/Frame 032909/0885 →
Priority Claims (1)
JP 2012-092314 · Apr 13, 2012 · national
Continuity (1)
Related Publication 20150030905A1 · Jan 29, 2015