Enhanced structural supercapacitors
The present disclosure is directed to structural supercapacitors and electrodes for structural supercapacitors having high energy storage and high mechanical characteristics and methods of making the structural supercapacitors and electrodes. The structural supercapacitors can include a solid electrolyte and carbon fiber electrodes comprising carbon nanotubes, surface functionalized redox-active moieties, and/or a conducting polymer.
1. An electrode for a structural supercapacitor comprising:
a carbon fiber sheet comprising carbon nanotubes, redox-active moieties, and a conducting polymer.
2. The electrode of claim 1 , wherein the redox-active moieties are on the carbon nanotubes.
3. The electrode of claim 2 , wherein the conducting polymer is on the redox-active moieties.
4. The electrode of claim 1 , wherein the conducting polymer is polyaniline.
5. The electrode of claim 1 , wherein the weight of the conducting polymer amounts to 15-35% of the weight of the carbon fiber sheet.
6. The electrode of claim 1 , wherein the weight of carbon nanotubes amounts to 10-25% of the weight of the carbon fiber sheet.
7. The electrode of claim 1 , wherein the redox-active moieties comprise aminobenzoate moieties.
8. A structural supercapacitor comprising:
at least two carbon fiber sheets comprising carbon nanotubes, redox-active moieties, and a conducting polymer; and
a solid electrolyte.
9. The structural supercapacitor of claim 8 , further comprising at least one separator between a first carbon fiber sheet and a second carbon fiber sheet.
10. The structural supercapacitor of claim 9 , wherein the separator comprises glass fiber.
11. The structural supercapacitor of claim 8 , wherein the redox-active moieties are on the carbon nanotubes.
12. The structural supercapacitor of claim 9 , wherein the conducting polymer is on the redox-active moieties.
13. The structural supercapacitor of claim 8 , wherein the conducting polymer is polyaniline.
14. The structural supercapacitor of claim 8 , wherein the weight of the conducting polymer amounts to 15-35% of the weight of the carbon fiber sheet.
15. The structural supercapacitor of claim 8 , wherein the weight of carbon nanotubes amounts to 10-25% of the weight of the carbon fiber sheet.
16. The structural supercapacitor of claim 8 , wherein the redox-active moieties comprise aminobenzoate moieties.
17. The structural supercapacitor of claim 8 , wherein the solid electrolyte is a polymer electrolyte.
18. The structural supercapacitor of claim 17 , wherein the polymer electrolyte is a poly(ethylene glycol)-based polymer electrolyte.
19. The structural supercapacitor of claim 17 , wherein the polymer electrolyte comprises a copolymer of methoxy polyethylene glycol monoacrylate and ethoxylated (4) pentaerythritol tetraacrylate containing lithium triflate as the ionic component.
20. The structural supercapacitor of claim 8 , wherein at least a portion of the solid electrolyte is between the at least two carbon fiber sheets.
21. The structural supercapacitor of claim 8 , further comprising at least one separator between a first carbon fiber sheet and a second carbon fiber sheet.
22. The structural supercapacitor of claim 8 , wherein the specific capacitance is at least 100 mF/g.
23. The structural supercapacitor of claim 8 , wherein the energy density is at least 15 mWh/kg.
24. The structural supercapacitor of claim 8 , wherein the flexural strength is at least 20 MPa according to ASTM D790.
25. The structural supercapacitor of claim 8 , wherein the flexural modulus is at least 2.5 GPa according to ASTM D790.
26. The structural supercapacitor of claim 8 , wherein the structural supercapacitor is an all-solid-state structural supercapacitor.