IP Library Granted Patent US 10,458,029
Granted Patent B2
US 10,458,029 · App. 14/566,182 · Granted Oct 29, 2019

Electrodes for use in bacterial fuel cells and bacterial electrolysis cells and bacterial fuel cells and bacterial electrolysis cells employing such electrodes

Inventors: Ronen Itzhak Shechter (Kiryat Tivon, IL); Eytan Baruch Levy (Rosh Ha'ayin, IL); Lior Eshed (Nesher, IL)
Assignee: EMEFCY LIMITED
C25B11/0489C02F1/46109C02F3/005C02F3/103C25B1/04H01M4/86H01M4/90H01M4/9008H01M4/9041H01M8/16C02F2001/46138C02F2001/46157C02F2001/46166C02F2201/4611C02F2201/4619C02F2303/10Y02E60/366Y02E60/527Y02W10/15Y02W10/30
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Quick Facts
Patent No.
US 10,458,029
App. No.
14/566,182
Granted
Oct 29, 2019
Kind
B2
Abstract

A bacterial fuel cell including a plurality of anodes and a plurality of cathodes in liquid communication with a liquid to be purified, the plurality of anodes and the plurality of cathodes each including a metal electrical conductor arranged to be electrically coupled across a load in an electrical circuit and an electrically conductive coating at least between the metal electrical conductor and the liquid to be purified, the electrically conductive coating being operative to mutually seal the liquid and the electrical conductor from each other.

Claims (32)

1. An electrode for use in at least one of a fuel cell and an electrolysis cell, the electrode comprising:

a metal electrical conductor arranged to be electrically coupled in an electrical circuit; and

an electrically conductive coating on the entirety of said metal electrical conductor, said electrically conductive coating operative to mutually seal a liquid in said cell and said electrical conductor from each other;

wherein said metal electrical conductor is formed of copper or a copper alloy or aluminum or an aluminum alloy;

said electrically conductive coating is formed of a conductive plastic;

said electrically conductive coating is adapted for biofilm growth; and

said electrically conductive coating is water impermeable.

2. An electrode according to claim 1 and also comprising at least one surface adapted for biofilm growth on a surface thereof which is in liquid communication with said liquid and is in electrical communication with said metal electrical conductor via said electrically conductive coating.

3. An electrode according to claim 2 and wherein said at least one surface adapted for biofilm growth is defined by cylindrical surfaces of a multiplicity of elongate elements formed of conductive plastic and extending generally radially outwardly from said metal electrical conductor.

4. An electrode according to claim 3 and wherein said metal electrical conductor is twisted to retain multiple ones of said multiplicity of elongate elements in bunches along an elongate extent thereof.

5. An electrode according to claim 3 and wherein said elongate elements are non-metallic electrical conductors having electrical conductivity less than that of said metal electrical conductor.

6. An electrode according to claim 3 and wherein said elongate elements are formed of conductive plastic.

7. An electrode according to claim 3 and wherein said elongate elements are formed of graphite fibers.

8. An electrode according to claim 2 and wherein said at least one surface adapted for biofilm growth is defined by a multiple vane element surrounded by a loosely wound helical element formed of conductive plastic and extending generally radially outwardly from said metal electrical conductor.

9. An electrode according to claim 2 and wherein said at least one surface adapted for biofilm growth is defined by a fabric overlying a surface of said electrically conductive coating.

10. An electrode according to claim 2 and wherein said electrically conductive coating comprises an electrically conductive sheet.

11. An electrode according to claim 10 and wherein said metal electrical conductor is in the form of a foil.

12. An electrode according to claim 10 and wherein said metal electrical conductor is in the form of a wire grid.

13. An electrode according to claim 10 and wherein said metal electrical conductor is in the form of a perforated planar element.

14. An electrode according to claim 10 and wherein said metal electrical conductor is in the form of a generally parallel array of wires.

15. An electrode according to claim 1 and wherein said metal electrical conductor is a coated metal electrical conductor and said electrically conductive coating comprises an electrically conductive coating formed onto said metal electrical conductor.

16. An electrode according to claim 1 and wherein said metal electrical conductor is in the form of a wire.

17. An electrode according to claim 1 and wherein said metal electrical conductor is in the form of a cable.

18. An electrode according to claim 1 and wherein said metal electrical conductor is in the form of a rod.

19. A bacterial fuel cell including at least one electrode according to claim 1 .

20. An electrode according to claim 1 , wherein said electrically conductive coating is oxygen permeable.

21. An electrode for use in at least one of a bacterial fuel cell and an electrolysis cell, the electrode comprising:

a metal electrical conductor arranged to be electrically coupled in an electrical circuit;

an electrically conductive coating on the entirety of said metal electrical conductor and a liquid in said cell, said electrically conductive coating operative to mutually seal a said liquid in said cell and said electrical conductor from each other;

wherein said metal electrical conductor is formed of copper or a copper alloy or aluminum or an aluminum alloy;

said electrically conductive coating is selected for permitting biofilm growth thereon; and

said electrically conductive coating is water impermeable.

Assignments (1)
CHANGE OF NAME Recorded Nov 4, 2020
From: EMEFCY LTD.
To: FLUENCE WATER PRODUCTS AND INNOVATION LTD
Reel/Frame 054305/0757 →
Continuity (4)
Continuation 13124535
Provisional Application 61182727 · May 31, 2009
Provisional Application 61198027 · Oct 30, 2008
Related Publication 20150093601A1 · Apr 2, 2015