IP Library Granted Patent US 10,102,982
Granted Patent B2
US 10,102,982 · App. 15/058,434 · Granted Oct 16, 2018

Electrolytes for supercapacitors

Inventors: Jagjit Nanda (Knoxville, TN); Rose E. Ruther (Oak Ridge, TN); Frank M. Delnick (Maryville, TN); Che-Nan Sun (Williamsville, NY)
Assignee: UT-Battelle LLC
H01G11/60H01G11/62H01G11/84H01G11/04H01G11/64Y02E60/13
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Quick Facts
Patent No.
US 10,102,982
App. No.
15/058,434
Granted
Oct 16, 2018
Kind
B2
Abstract

A supercapacitor and a related electrolyte composition suitable for use in a supercapacitor are provided. An electrolyte composition can include a conductive sodium salt component comprising NaTFSI and a non-aqueous solvent component comprising dimethoxy ethane (DME). The conductive sodium salt component and the non-aqueous solvent component can be present at a molar ratio of NaTFSI:DME of 1:1 to 1:3, inclusive.

Claims (41)

1. A supercapacitor comprising:

a negative electrode having a current collector;

a positive electrode having a current collector;

an ion-permeable separator disposed between the negative and positive electrodes; and

an electrolyte composition disposed between the negative and positive electrodes, the electrolyte composition comprising:

a conductive sodium salt component comprising sodium bis(trifluoromethylsulfonyl)imide (NaTFSI); and

a non-aqueous solvent component comprising dimethoxy ethane (DME);

wherein the conductive sodium salt component and the non-aqueous solvent component are present at a molar ratio of NaTFSI:DME of 1:1 to 1:3, inclusive, and wherein the electrolyte composition has an electrochemical potential window of at least 3.25 volts.

2. The supercapacitor of claim 1 wherein the molar ratio of NaTFSI:DME is 1:2.

3. The supercapacitor of claim 1 wherein the electrolyte composition further comprises a corrosion inhibitor selected from the group consisting of sodium perchlorate (NaClO 4 ), tetrabutylammonium perchlorate (TBAClO 4 ), and combinations thereof.

4. The supercapacitor of claim 1 wherein the negative and positive electrodes comprise porous carbon.

5. The supercapacitor of claim 1 wherein the negative electrode current collector comprises aluminum.

6. The supercapacitor of claim 1 wherein the electrolyte composition has an electrochemical potential window of at least 3.25 volts with 99% coulombic efficiency after 10 cycles.

7. The supercapacitor of claim 1 wherein the conductive sodium salt component and the non-aqueous solvent component when mixed form a solvated ionic liquid.

8. An electrolyte composition for a supercapacitor comprising:

a conductive sodium salt component comprising sodium bis(trifluoromethylsulfonyl)imide (NaTFSI); and

a non-aqueous solvent component comprising dimethoxy ethane (DME);

wherein the conductive sodium salt component and the non-aqueous solvent component are combined at a molar ratio between one mole of NaTFSI to one mole of DME and one mole of NaTFSI to three moles DME, inclusive,

wherein the electrolyte composition has an electrochemical potential window of at least 3.25 volts.

9. The electrolyte composition of claim 8 further comprising a corrosion inhibitor selected from the group consisting of sodium perchlorate (NaClO 4 ), tetrabutylammonium perchlorate (TBAClO 4 ), and combinations thereof.

10. The electrolyte composition of claim 8 wherein the conductive sodium salt component and the non-aqueous solvent component when mixed form a solvated ionic liquid.

11. The electrolyte composition of claim 8 wherein the molar ratio of NaTFSI:DME is 1:2.

12. A method of forming an electrolyte composition for a supercapacitor comprising:

providing a conductive sodium salt component comprising sodium bis(trifluoromethylsulfonyl)imide (NaTFSI);

providing a non-aqueous solvent component comprising dimethoxy ethane (DME); and

combining the conductive sodium salt component and the non-aqueous solvent component to form an electrolyte composition comprising a solvated ionic liquid;

wherein the electrolyte composition has an electrochemical potential window of at least 3.25 volts and wherein the conductive sodium salt component and the non-aqueous solvent component are present at a molar ratio of NaTFSI:DME of 1:1 to 1:3, inclusive.

13. The method of claim 12 wherein the conductive sodium salt component and the non-aqueous solvent component are combined at a molar ratio of one mole of NaTFSI to two moles of DME.

14. The method of claim 12 , further comprising providing a corrosion inhibitor selected from the group consisting of sodium perchlorate (NaClO 4 ), tetrabutylammonium perchlorate (TBAClO 4 ), and combinations thereof.

15. A method of forming a supercapacitor comprising:

providing a negative electrode having a current collector;

providing a positive electrode having a current collector;

providing an ion-permeable separator in a region between the negative and positive electrodes; and

providing an electrolyte composition in the space between the negative and positive electrodes, the electrolyte composition comprising:

a conductive sodium salt component comprising sodium bis(trifluoromethylsulfonyl)imide (NaTFSI); and

a non-aqueous solvent component comprising dimethoxy ethane (DME), the electrolyte composition having an electrochemical potential window of at least 3.25 volts;

wherein the non-aqueous solvent component and the at least one conductive sodium salt component are combined to form a solvated ionic liquid in the region between the negative and positive electrodes and wherein the conductive sodium salt component and the non-aqueous solvent component are present at a molar ratio of NaTFSI:DME of 1:1 to 1:3, inclusive.

16. The method of claim 15 , further comprising providing a corrosion inhibitor selected from the group consisting of sodium perchlorate (NaClO 4 ), tetrabutylammonium perchlorate (TBAClO 4 ), and combinations thereof.

17. The method of claim 15 wherein the negative and positive electrodes comprise porous carbon.

18. The method of claim 15 wherein the negative electrode current collector comprises aluminum.

19. The method of claim 15 wherein the electrolyte composition has a 99% coulombic efficiency after 10 cycles.

Assignments (4)
CONFIRMATORY LICENSE Recorded Jun 27, 2016
From: UT-BATTELLE, LLC
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 039011/0110 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 6, 2016
From: NANDA, JAGJIT; RUTHER, ROSE E.; DELNICK, FRANK M.
To: UT-BATTELLE, LLC
Reel/Frame 038485/0713 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 6, 2016
From: SUN, CHE-NAN
To: OAK RIDGE ASSOCIATED UNIVERSITIES
Reel/Frame 038485/0722 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 6, 2016
From: OAK RIDGE ASSOCIATED UNIVERSITIES
To: UT-BATTELLE, LLC
Reel/Frame 038485/0784 →
Continuity (2)
Provisional Application 62127340 · Mar 3, 2015
Related Publication 20160260551A1 · Sep 8, 2016