Energy storage device and method of making
A coaxial supercapacitor and method of manufacture such that the supercapacitor has an elongated shape resembling that of a wire and which can be bent to a desired shape and which can optionally be used in place of a wire for a given application while providing the benefits and characteristics of a supercapacitor. The supercapacitor can be manufactured without the necessity of complex manufacturing techniques.
1. A cable supercapacitor comprising:
a first terminal;
a first electrode disposed around said first terminal;
a second electrode surrounding said first electrode and coaxial therewith;
a separator disposed between said first electrode and said second electrode;
a second terminal in electrical contact with said second electrode;
said second terminal extending in the opposite direction from said first terminal such that said cable supercapacitor comprises an elongated cable-like structure with said first terminal at a first end thereof and with said second terminal at an opposing end thereof; and
a first filament, said filament spirally wrapped around at least one of said first terminal, said first electrode, said separator, and/or said second electrode,
wherein said first filament is selected from the group consisting of: conductive filaments and nonconductive filaments.
2. The cable supercapacitor of claim 1 wherein said separator comprises a flexible solid-state electrolyte.
3. The cable supercapacitor of claim 1 wherein said separator comprises a non-conductive porous material with a liquid or gel electrolyte disposed therein.
4. The cable supercapacitor of claim 3 wherein said non-conductive porous material comprises a fabric.
5. The cable supercapacitor of claim 3 wherein said non-conductive porous material comprises an absorbent material.
6. The cable supercapacitor of claim 1 further comprising a second filament.
7. The cable supercapacitor of claim 6 wherein said first filament is spirally wrapped around said first electrode and wherein said second filament is spirally wrapped around said second electrode such that said second filament lashes said second terminal to said second electrode.
8. The cable supercapacitor of claim 7 wherein said first filament and said second filament are conductive and are formed from the same material.
9. The cable supercapacitor of claim 1 comprising a non-conductive filament spirally wrapped around said separator.
10. The cable supercapacitor of claim 1 wherein at least one of said first electrode or said second electrode comprises a dry foam impregnated with a dry electrode material.
11. The cable supercapacitor of claim 10 wherein said dry foam material comprises a metal foam impregnated with a dry electrode material.
12. The cable supercapacitor of claim 10 wherein one of said first electrode or said second electrode comprises a dry foam impregnated with a metal oxide material and the other of said first electrode or said second electrode comprises a dry foam impregnated with activated carbon.
13. The cable supercapacitor of claim 1 wherein said second terminal is wrapped around said second electrode.
14. A method for manufacturing a cable supercapacitor, the method comprising:
disposing a first electrode around a first terminal;
disposing a separator around the outside circumference of the first electrode and coaxial therewith;
disposing a second electrode around the outside circumference of the separator and coaxial therewith;
spirally wrapping at least one filament around at least one of said first terminal, said first electrode, said separator, and/or said second electrode,
wherein said at least one filament is selected from the group consisting of: conductive filaments and nonconductive filaments; and
placing a second terminal in electrical contact with the second electrode.
15. The method of claim 14 wherein disposing a separator around the first electrode comprises disposing a dry electrolyte around the first electrode.
16. The method of claim 14 further comprising saturating the separator with a liquid or gel electrolyte.
17. The method of claim 14 wherein placing a second terminal in electrical contact with the second electrode comprises lashing the second terminal to the second electrode with a second filament.
18. The method of claim 14 wherein disposing a first electrode around a first terminal comprises wrapping a dry foam, impregnated with a dry electrode material, around the first terminal.
19. The method of claim 14 wherein disposing a second electrode around the separator comprises wrapping a dry foam, impregnated with a dry electrode material, around the separator.
20. The method of claim 14 comprising wrapping a non-conductive filament around the separator.
21. The method of claim 14 wherein placing the second terminal in electrical contact with the second electrode comprises wrapping the second terminal around the second electrode.