IP Library › Granted Patent US 10,693,117
Granted Patent B2
US 10,693,117 · App. 15/911,020 · Granted Jun 23, 2020

Electrochemical systems with ionically conductive and electronically insulating separator

Inventor: Farshid Roumi (Pasadena, CA)
Assignee: California Institute of Technology
H01M2/1686H01G9/0029H01G11/52H01M2/145H01M2/166H01M2/1646H01M2/1653H01M2/18H01M4/131H01M4/133H01M4/134H01M4/136H01M4/38H01M4/382H01M4/525H01M4/587H01M4/5825H01M4/625H01M8/02H01M8/0245H01M8/1016H01M10/0525H01M10/0562H01M10/0568H01M10/0569H01M10/0585H01M12/08H01M10/052H01M2004/027H01M2004/028H01M2300/004H01M2300/0037H01M2300/0071Y10T29/49108
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Quick Facts
Patent No.
US 10,693,117
App. No.
15/911,020
Granted
Jun 23, 2020
Kind
B2
Abstract

Provided are separator systems for electrochemical systems providing electronic, mechanical and chemical properties useful for a variety of applications including electrochemical storage and conversion. Embodiments provide structural, physical and electrostatic attributes useful for managing and controlling dendrite formation and for improving the cycle life and rate capability of electrochemical cells including silicon anode based batteries, air cathode based batteries, redox flow batteries, solid electrolyte based systems, fuel cells, flow batteries and semisolid batteries. Disclosed separators include multilayer, porous geometries supporting excellent ion transport properties, providing a barrier to prevent dendrite initiated mechanical failure, shorting or thermal runaway, or providing improved electrode conductivity and improved electric field uniformity. Disclosed separators include ionically conductive and electronically insulating separators having an electronically and ionically conductive layer.

Claims (72)

1. An electrochemical cell comprising:

a positive electrode;

a first current collector pole in electronic communication with the positive electrode;

a negative electrode;

a second current collector pole in electronic communication with the negative electrode;

an ionically conductive and electronically insulating separator positioned between said positive electrode and said negative electrode;

a first electronically and ionically conductive layer positioned between said positive electrode or said negative electrode and said separator and in electronic contact with said negative electrode or positive electrode via an external third current collector pole; and

one or more electrolytes positioned between and provided in contact with said positive electrode and said negative electrode; wherein said one or more electrolytes are capable of conducting charge carriers;

wherein said first electronically and ionically conductive layer comprises an electrochemically active material, and wherein the first electronically and ionically conductive layer is in electronic communication with the third current collector pole and configured to reduce or oxidize the positive electrode or the negative electrode via the third current collector pole and the first current collector pole or the second current collector pole; and

wherein said first electronically and ionically conductive layer provides an electronic conductivity greater than or equal to 1 S/cm and provides an ionic resistance less than or equal to 10 Ωcm 2 .

2. The electrochemical cell of claim 1 , wherein first electronically and ionically conductive layer is configured to reduce one of the positive electrode and the negative electrode.

3. The electrochemical cell of claim 1 , wherein said first electronically and ionically conductive layer is configured to oxidize one of the positive electrode and the negative electrode.

4. The electrochemical cell of claim 1 , wherein said first electronically and ionically conductive layer is an electrochemically active layer.

5. The electrochemical cell of claim 1 , wherein said external current collector pole provides an added path for electron transfer; said added path being between said first electronically and ionically conductive layer and said positive electrode or between said first electronically and ionically conductive layer and said negative electrode.

6. The electrochemical cell of claim 5 , wherein said added path is at least partially external to said electrochemical cell.

7. The electrochemical cell of claim 1 , wherein said first electronically and ionically conductive layer comprises a thin film structure deposited on at least one external surface of said separator, said positive electrode or said negative electrode or a coating coated on at least one external surface of said separator, said positive electrode or said negative electrode.

8. The electrochemical cell of claim 1 , wherein at least a portion of said first electronically and ionically conductive layer is positioned within an active material of said positive electrode or within an active material of said negative electrode; wherein said portion of said first electronically and ionically conductive layer that is positioned within said active material of said positive electrode or said active material of said negative electrode is not in physical contact with said separator, or wherein said portion of said first electronically and ionically conductive layer that is positioned within said active material of said positive electrode or said active material of said negative electrode is in physical contact with a current collector of said positive electrode or a current collector of said negative electrode, or wherein said portion of said first electronically and ionically conductive layer that is positioned within said active material of said positive electrode or said active material of said negative electrode is not in physical contact with said current collector of said positive electrode or a current collector of said negative electrode.

9. The electrochemical cell of claim 8 , wherein said portion of said first electronically and ionically conductive layer that is positioned within said active material of said positive electrode or said active material of said negative electrode is provided within said active material of said positive electrode or said active material of said negative electrode by a method selected from the group consisting of wet processing, dry processing, mechanical pressing, thermal deposition, coating and any combination of these.

10. The electrochemical cell of claim 1 , wherein said first electronically and ionically conductive layer comprises the external current collector pole.

11. The electrochemical cell of claim 1 , wherein said first electronically and ionically conductive layer is provided in physical contact with said separator.

12. The electrochemical cell of claim 1 , wherein said first electronically and ionically conductive layer is in physical contact with said positive electrode or said negative electrode.

13. The electrochemical cell of claim 1 , wherein said first electronically and ionically conductive layer provides an added path for electron transfer between said positive electrode and a positive electrode current collector or an added path for electron transfer between said negative electrode and a negative electrode current collector or wherein said first electronically and ionically conductive layer increases an electronic conductivity of at least a portion of said negative electrode or said positive electrode.

14. The electrochemical cell of claim 1 , further comprising a second electronically and ionically conductive layer; wherein said first electronically and ionically conductive layer is positioned in electrical contact with said positive electrode and wherein said second electronically and ionically conductive layer is positioned in electrical contact with said negative electrode, and wherein said first and second electronically and ionically conductive layers are not in direct physical or electrical contact with each other.

15. The electrochemical cell of claim 1 , wherein said first electronically and ionically conductive layer provides for a homogeneous electric field adjacent to and within said positive electrode or said negative electrode, thereby providing uniform ion deposition into said positive electrode or said negative electrode; or wherein said first electronically and ionically conductive layer prevents dendrite growth on or from said positive electrode or said negative electrode.

16. The electrochemical cell of claim 1 , wherein said separator comprises a coating coated on at least one external surface of said first electronically and ionically conductive layer, at least one surface of said positive electrode or at least one surface of said negative electrode or wherein said separator comprises a thin film deposited on at least one external surface of said first electronically and ionically conductive layer, at least one surface of said positive electrode or at least one surface of said negative electrode.

17. The electrochemical cell of claim 1 , wherein said first electronically and ionically conductive layer is a coating on said separator; and wherein said separator has a total thickness less than or equal to 500 μm.

18. The electrochemical cell of claim 1 , wherein said first electronically and ionically conductive layer comprises a carbon coating.

19. The electrochemical cell of claim 1 , wherein said electrochemical cell comprises a secondary battery, a primary battery, a flow battery, a semi-solid battery, a fuel cell, an electrochemical capacitor, a lead acid battery, a lithium ion battery, a lithium metal battery, a zinc battery, a lithium-air battery, a zinc-air battery, an aluminum-air battery, an iron-air battery, a lithium-water battery, a silicon based battery, a sodium battery, a magnesium battery, a sodium ion battery, a magnesium ion battery, or an alkaline battery, or wherein said electrochemical cell comprises a lithium battery comprising one or more of a silicon based negative electrode, a lithium negative electrode, a metal oxide electrode, a sulfur based positive electrode, a carbon-based oxygen positive electrode, and a carbon based water positive electrode.

20. The electrochemical cell of claim 1 , wherein said first electronically and ionically conductive layer is in direct electronic contact with said negative electrode or positive electrode via said external current collector pole.

21. The electrochemical cell of claim 1 , wherein said first electronically and ionically conductive layer is in indirect electronic contact with said negative electrode or positive electrode via said external current collector pole.

22. The electrochemical cell of claim 1 , wherein said electrochemical cell comprising an added path for charging and discharging said electrochemical cell; said added path being between said first electronically and ionically conductive layer and said positive electrode or between said first electronically and ionically conductive layer and said negative electrode; and wherein said added path is comprises said external current collector pole.

23. The electrochemical cell of claim 22 , wherein said added path is at least partially external to said electrochemical cell.

24. The electrochemical cell of claim 1 , wherein said first electronically and ionically conductive layer is not in direct physical contact with said positive electrode or said negative electrode.

25. The electrochemical cell of claim 1 , wherein first electronically and ionically conductive layer is configured to participate in redox reactions with the positive or the negative electrode.

26. An electrochemical cell comprising:

a positive electrode;

a first current collector pole in electronic communication with the positive electrode;

a negative electrode;

a second current collector pole in electronic communication with the negative electrode;

an ionically conductive and electronically insulating separator positioned between said positive electrode and said negative electrode;

a first electronically and ionically conductive layer positioned between said positive electrode and said separator and in electrical contact with said positive electrode or positioned between said negative electrode and said separator and in electrical contact with said negative electrode; wherein said first electronically and ionically conductive layer comprises an electrochemically active carbon material;

and wherein the first electronically and ionically conductive layer is in electronic communication with a third current collector pole and configured to reduce or oxidize the positive electrode or the negative electrode via the third current collector pole and the first current collector pole or the second current collector pole;

wherein said first electronically and ionically conductive layer provides an electronic conductivity greater than or equal to 1 S/cm and provides an ionic resistance less than or equal to 10 Ωcm 2 ;

and

one or more electrolytes positioned between and provided in contact with said positive electrode and said negative electrode; wherein said one or more electrolytes are capable of conducting charge carriers.

27. The electrochemical cell of claim 26 , wherein said first electronically and ionically conductive layer comprises graphite, carbon black, graphene, carbon nanotubes, coke, or any combination thereof.

28. A method for operating an electrochemical cell, comprising:

(a) providing an electrochemical cell comprising:

a positive electrode;

a first current collector pole in electronic communication with the positive electrode;

a negative electrode;

a second current collector pole in electronic communication with the negative electrode;

an ionically conductive and electronically insulating separator positioned between said positive electrode and said negative electrode;

a first electronically and ionically conductive layer positioned between said positive electrode or said negative electrode and said separator and in electronic contact with said negative electrode or positive electrode through an external third current collector pole; and

one or more electrolytes positioned between and in contact with said positive electrode and said negative electrode; wherein said one or more electrolytes are capable of conducting charge carriers;

wherein said first electronically and ionically conductive layer comprises an electrochemically active material, and wherein the first electronically and ionically conductive layer is in electronic communication with the third current collector pole and configured to reduce or oxidize the positive electrode or the negative electrode via the third current collector pole and the first current collector pole or the second current collector pole; and

wherein said first electronically and ionically conductive layer provides an electronic conductivity greater than or equal to 1 S/cm and provides an ionic resistance less than or equal to 10 Ωcm 2 ; and

(b) preventing dendrite formation between said positive electrode and said negative electrode during operation of said electrochemical cell.

29. The method of claim 28 , wherein first electronically and ionically conductive layer participates in reduction of one of the positive electrode and the negative electrode during operation of said electrochemical cell.

30. The method of claim 28 , wherein first electronically and ionically conductive layer participation in oxidation of one of the positive electrode and the negative electrode during operation of said electrochemical cell.

31. A method for making an electrochemical cell, comprising:

(a) providing a positive electrode and a first current collector pole in electronic communication with the positive electrode;

(b) providing a negative electrode and a second current collector pole in electronic communication with the negative electrode;

(c) providing an ionically conductive and electronically insulating separator positioned between said positive electrode and said negative electrode;

(d) providing a first electronically and ionically conductive layer positioned between said positive electrode or said negative electrode and said separator and in electronic contact with said negative electrode or positive electrode through an external third current collector pole; and

(e) providing one or more electrolytes between and in contact with said positive electrode and said negative electrode; wherein said one or more electrolytes are capable of conducting charge carriers;

wherein said first electronically and ionically conductive layer comprises an electrochemically active material, and wherein the first electronically and ionically conductive layer is in electronic communication with the third current collector pole and configured to reduce or oxidize the positive electrode or the negative electrode via the third current collector pole and the first current collector pole or the second current collector pole; and

wherein said first electronically and ionically conductive layer provides an electronic conductivity greater than or equal to 1 S/cm and provides an ionic resistance less than or equal to 10 Ωcm2.

32. The method of claim 31 , wherein first electronically and ionically conductive layer is configured to reduce one of the positive electrode and the negative electrode.

33. The method of claim 31 , wherein said first electronically and ionically conductive layer is configured to oxidize one of the positive electrode and the negative electrode.

34. The method of claim 31 , wherein said first electronically and ionically conductive layer is an electrochemically active layer.

35. The method of claim 31 , wherein said first electronically and ionically conductive layer comprises an electrochemically active material.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 13, 2018
From: ROUMI, FARSHID
To: CALIFORNIA INSTITUTE OF TECHNOLOGY
Reel/Frame 045186/0610 →
Continuity (9)
Continuation 15148278 · May 6, 2016
Continuation 13738835 · Jan 10, 2013
Continuation In Part 13545683 · Jul 10, 2012
Continuation In Part PCTUS2012046067 · Jul 10, 2012
Provisional Application 61506489 · Jul 11, 2011
Provisional Application 61622371 · Apr 10, 2012
Provisional Application 61677306 · Jul 30, 2012
Provisional Application 61679584 · Aug 3, 2012
Related Publication 20180294460A1 · Oct 11, 2018
Cited By (2)
US 12,203,994 US 12,278,393