IP Library › Granted Patent US 12,620,676
Granted Patent B2
US 12,620,676 · App. 18/094,138 · Granted May 5, 2026

System and method for a ceramic-based composite coating for a coated battery separator

Inventors: Xingcheng Xiao (Troy, MI); Mei Cai (Bloomfield Hills, MI); Sherman H. Zeng (Troy, MI)
Assignee: GM Global Technology Operations LLC
H01M50/457H01M10/0525
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Quick Facts
Patent No.
US 12,620,676
App. No.
18/094,138
Granted
May 5, 2026
Kind
B2
Abstract

A coated polymer separator for a battery cell is provided. The coated polymer separator includes a polymer separator including a first primary surface and a second primary surface. The coated polymer separator further includes a ceramic-based composite coating disposed on the first primary surface and the second primary surface. The ceramic-based composite coating includes lithiated zeolite particles and particles of a second ceramic material including an oxide.

Claims (77)

1 . A coated polymer separator for a battery cell, the coated polymer separator comprising:

a polymer separator including:

a first primary surface; and

a second primary surface; and

a ceramic-based composite coating disposed on the first primary surface and the second primary surface, the ceramic-based composite coating including:

lithiated zeolite particles; and

particles of a second ceramic material including an oxide;

wherein the ceramic-based composite coating further includes, on the first primary surface:

a first layer including the lithiated zeolite particles; and

a second layer including the particles of the second ceramic material; and

wherein the ceramic-based composite coating further includes, on the second primary surface:

a third layer including the lithiated zeolite particles; and

a fourth layer including the particles of the second ceramic material.

2 . The coated polymer separator of claim 1 , wherein the ceramic-based composite coating further includes the lithiated zeolite particles mixed with the particles of the second ceramic material.

3 . The coated polymer separator of claim 1 , wherein the first layer including the lithiated zeolite particles abuts the first primary surface of the polymer separator; and

wherein the third layer including the lithiated zeolite particles abuts the second primary surface of the polymer separator.

4 . The coated polymer separator of claim 1 , wherein the second layer including the particles of the second ceramic material abuts the first primary surface of the polymer separator; and

wherein the fourth layer including the particles of the second ceramic material abuts the second primary surface of the polymer separator.

5 . The coated polymer separator of claim 1 , wherein a layer of the lithiated zeolite particles is coated upon the first primary surface of the polymer separator; and

wherein a layer of the second ceramic material is coated upon the second primary surface of the polymer separator.

6 . The coated polymer separator of claim 1 , wherein the second ceramic material is one of aluminum oxide (Al 2 O 3 ), silicon dioxide (SiO 2 ), titanium dioxide (TiO 2 ), magnesium oxide (MgO), or Boehmite (Al(OH)O)(AlHO 2 ).

7 . The coated polymer separator of claim 3 , wherein lithiated zeolite is present within the ceramic-based composite coating in a range from 20 parts by weight per 100 parts by weight of the ceramic-based composite coating to 80 parts by weight per 100 parts by weight of the ceramic-based composite coating; and

wherein the second ceramic material including an oxide may be present within the ceramic-based composite coating in a range from 20 parts by weight per 100 parts by weight of the ceramic-based composite coating to 80 parts by weight per 100 parts by weight of the ceramic-based composite coating.

8 . The coated polymer separator of claim 7 ,

wherein the coated polymer separator further includes an adhesive layer on one side or two sides;

wherein the adhesive layer is laminated to the cathode or the anode; and

wherein the adhesive layer affixes the cathode or the anode to the coated polymer separator.

9 . A battery cell including a coated polymer separator, the battery cell comprising:

an anode;

a cathode;

an electrolyte; and

the coated polymer separator, including

a polymer separator including:

a first primary surface; and

a second primary surface; and

a ceramic-based composite coating disposed on the first primary surface and the second primary surface, the ceramic-based composite coating including:

lithiated zeolite particles; and

particles of a second ceramic material including at least one oxide;

wherein the ceramic-based composite coating further includes, on the first primary surface:

a first layer including the lithiated zeolite particles; and

a second layer including the particles of the second ceramic material; and

wherein the ceramic-based composite coating further includes, on the second primary surface:

a third layer including the lithiated zeolite particles; and

a fourth layer including the particles of the second ceramic material.

10 . The battery cell of claim 9 , wherein the ceramic-based composite coating further includes the lithiated zeolite particles mixed with the particles of the second ceramic material.

11 . The battery cell of claim 9 , wherein the first layer including the lithiated zeolite particles abuts the first primary surface of the polymer separator; and

wherein the third layer including the lithiated zeolite particles abuts the second primary surface of the polymer separator.

12 . The battery cell of claim 9 , wherein the second layer including the particles of the second ceramic material abuts the first primary surface of the polymer separator; and

wherein the fourth layer including the particles of the second ceramic material abuts the second primary surface of the polymer separator.

13 . The battery cell of claim 12 , wherein the coated polymer separator further includes an adhesive layer on one side or two sides;

wherein the adhesive layer is laminated to the cathode or the anode; and

wherein the adhesive layer affixes the cathode or the anode to the coated polymer separator.

14 . The battery cell of claim 9 , wherein a layer of the lithiated zeolite particles is coated upon the first primary surface of the polymer separator; and

wherein a layer of the second ceramic material is coated upon the second primary surface of the polymer separator.

15 . The battery cell of claim 9 , wherein the second ceramic material is one of aluminum oxide (Al 2 O 3 ), silicon dioxide (SiO 2 ), titanium dioxide (TiO 2 ), magnesium oxide (MgO), or Boehmite (Al(OH)O)(AlHO 2 ).

16 . The battery cell of claim 9 , wherein lithiated zeolite is present within the ceramic-based composite coating in a range from 20 parts by weight per 100 parts by weight of the ceramic-based composite coating to 80 parts by weight per 100 parts by weight of the ceramic-based composite coating; and

wherein the second ceramic material including an oxide may be present within the ceramic-based composite coating in a range from 20 parts by weight per 100 parts by weight of the ceramic-based composite coating to 80 parts by weight per 100 parts by weight of the ceramic-based composite coating.

17 . A method to create a coated polymer separator for a battery cell including a ceramic-based composite coating, the method comprising:

applying the ceramic-based composite coating to a first primary surface of a polymer separator;

applying the ceramic-based composite coating to a second primary surface of the polymer separator; and

drying the ceramic-based composite coating; and

wherein the ceramic-based composite coating includes:

lithiated zeolite particles; and

particles of a second ceramic material including an oxide;

wherein the ceramic-based composite coating further includes, on the first primary surface:

a first layer including the lithiated zeolite particles; and

a second layer including the particles of the second ceramic material; and

wherein the ceramic-based composite coating further includes, on the second primary surface:

a third layer including the lithiated zeolite particles; and

a fourth layer including the particles of the second ceramic material.

18 . The method of claim 17 , wherein the second ceramic material is one of aluminum oxide (Al 2 O 3 ), silicon dioxide (SiO 2 ), titanium dioxide (TiO 2 ), magnesium oxide (MgO), or Boehmite (Al(OH)O)(AlHO 2 ).

19 . The method of claim 17 ,

wherein the first layer including the lithiated zeolite particles abuts the first primary surface of the polymer separator; and

wherein the third layer including the lithiated zeolite particles abuts the second primary surface of the polymer separator.

20 . The method of claim 17 ,

wherein the second layer including the particles of the second ceramic material abuts the first primary surface of the polymer separator; and

wherein the fourth layer including the particles of the second ceramic material abuts the second primary surface of the polymer separator.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 6, 2023
From: XIAO, XINGCHENG; CAI, MEI; ZENG, SHERMAN H.
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 062301/0127 →
Continuity (1)
Related Publication 20240234953A1 · Jul 11, 2024
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