IP Library Granted Patent US 8,889,281
Granted Patent B2
US 8,889,281 · App. 13/287,018 · Granted Nov 18, 2014

Batteries for efficient energy extraction from a salinity difference

Inventors: Fabio La Mantia (Bochum, DE); Mauro Pasta (Ubiale Clanezzo, IT); Heather Dawn Deshazer (Palo Alto, CA); Yi Cui (Stanford, CA)
Assignee: The Board of Trustees of the Leland Stanford Junior University
H01M14/00H01M6/34Y02E60/12
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Quick Facts
Patent No.
US 8,889,281
App. No.
13/287,018
Granted
Nov 18, 2014
Kind
B2
Abstract

An electrochemical system includes: (1) a battery including an anode and a cathode; (2) a first source of a first electrolyte having a first concentration of ions; (3) a second source of a second electrolyte having a second concentration of the ions, wherein the second concentration is greater than the first concentration; and (4) a fluid conveyance mechanism connected between the battery and each of the first source and the second source. During charging of the battery, the anode and the cathode are at least partially immersed in the first electrolyte, and, during discharging of the battery, the anode and the cathode are at least partially immersed in the second electrolyte. The fluid conveyance mechanism exchanges the first electrolyte with the second electrolyte between charging and discharging of the battery, and exchanges the second electrolyte with the first electrolyte between discharging and charging of the battery.

Claims (33)

1. An electrochemical system, comprising:

a battery including an anode and a cathode;

a charger;

a load;

a switch mechanism electrically connected to the anode and the cathode through, alternatively, the charger or the load;

a first source of a first electrolyte having a first concentration of ions;

a second source of a second electrolyte having a second concentration of the ions, wherein the second concentration is greater than the first concentration; and

a fluid conveyance mechanism connected between the battery and each of the first source and the second source,

wherein the electrochemical system is configured such that:

during charging of the battery, the anode and the cathode are at least predominantly immersed in the first electrolyte, relative to the second electrolyte, and

during discharging of the battery, the anode and the cathode are at least predominantly immersed in the second electrolyte, relative to the first electrolyte, and

wherein the fluid conveyance mechanism is configured to exchange the first electrolyte with the second electrolyte between charging and discharging of the battery, and the fluid conveyance mechanism is configured to exchange the second electrolyte with the first electrolyte between discharging and charging of the battery, and

wherein the switch mechanism is configured such that:

during charging of the battery, the switch mechanism is configured to establish an electrical connection between the anode and the cathode through the charger, and disconnect the load between the anode and the cathode; and

during discharging of the battery, the switch mechanism is configured to establish an electrical connection between the anode and the cathode through the load, and disconnect the charger between the anode and the cathode.

2. The electrochemical system of claim 1 , wherein, during discharging of the battery, anions of the second electrolyte are incorporated within the anode, and wherein, during charging of the battery, at least a fraction of the anions is released from the anode into the first electrolyte.

3. The electrochemical system of claim 2 , wherein at least one of the anions is monovalent.

4. The electrochemical system of claim 2 , wherein at least one of the anions is divalent.

5. The electrochemical system of claim 2 , wherein at least one of the anions is trivalent.

6. The electrochemical system of claim 2 , wherein the anions include Cl − ions.

7. The electrochemical system of claim 1 , wherein, during discharging of the battery, cations of the second electrolyte are incorporated within the cathode, and wherein, during charging of the battery, at least a fraction of the cations is released from the cathode into the first electrolyte.

8. The electrochemical system of claim 7 , wherein at least one of the cations is monovalent.

9. The electrochemical system of claim 7 , wherein at least one of the cations is divalent.

10. The electrochemical system of claim 7 , wherein at least one of the cations is trivalent.

11. The electrochemical system of claim 7 , wherein the cations include Na + ions.

12. The electrochemical system of claim 7 , wherein the cations include Li + ions.

13. The electrochemical system of claim 7 , wherein the cations include H + ions.

14. The electrochemical system of claim 1 , wherein the cathode includes at least one of sodium, lithium, potassium, and hydrogen.

15. The electrochemical system of claim 1 , wherein the anode includes AgCl.

16. The electrochemical system of claim 1 , wherein the cathode includes a Na + intercalation material.

17. The electrochemical system of claim 1 , wherein a molar concentration of the ions in the second electrolyte is at least 10 times a molar concentration of the ions in the first electrolyte.

18. The electrochemical system of claim 1 , wherein a molar concentration of the ions in the second electrolyte is at least 15 times a molar concentration of the ions in the first electrolyte.

19. The electrochemical system of claim 1 , wherein the cathode includes a material to store cations within a bulk crystal structure of the cathode.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 25, 2012
From: LA MANTIA, FABIO; PASTA, MAURO; DESHAZER, HEATHER DAWN; CUI, YI
To: THE BOARD OF TRUSTEES OF THE LELAND STANFORD JUNIOR UNIVERSITY
Reel/Frame 027591/0683 →
Continuity (2)
Provisional Application 61409428 · Nov 2, 2010
Related Publication 20120135282A1 · May 31, 2012