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High-power biofuel cell textiles from woven biscrolled carbon nanotube yarns

Authors :
Kwon, Cheong Hoon
Lee, Sung-Ho
Choi, Young-Bong
Lee, Jae
Kim, Shi Hyeong
Kim, Hyug-Han
Spinks, Geoffrey M
Wallace, Gordon G
Lima, Marcio D
Kozlov, Mikhail E
Baughman, Ray H
Kim, Seon Jeong
Kwon, Cheong Hoon
Lee, Sung-Ho
Choi, Young-Bong
Lee, Jae
Kim, Shi Hyeong
Kim, Hyug-Han
Spinks, Geoffrey M
Wallace, Gordon G
Lima, Marcio D
Kozlov, Mikhail E
Baughman, Ray H
Kim, Seon Jeong
Source :
Australian Institute for Innovative Materials - Papers
Publication Year :
2014

Abstract

Biofuel cells that generate electricity from glucose in blood are promising for powering implantable biomedical devices. Immobilizing interconnected enzyme and redox mediator in a highly conducting, porous electrode maximizes their interaction with the electrolyte and minimizes diffusion distances for fuel and oxidant, thereby enhancing power density. Here we report that our separator-free carbon nanotube yarn biofuel cells provide an open-circuit voltage of 0.70 V, and a maximum areal power density of 2.18 mW cm−2 that is three times higher than for previous carbon nanotube yarn biofuel cells. Biofuel cell operation in human serum provides high areal power output, as well as markedly increased lifetime (83% remained after 24 h), compared with previous unprotected biofuel cells. Our biscrolled yarn biofuel cells are woven into textiles having the mechanical robustness needed for implantation for glucose energy harvesting.

Details

Database :
OAIster
Journal :
Australian Institute for Innovative Materials - Papers
Publication Type :
Electronic Resource
Accession number :
edsoai.on1066331674
Document Type :
Electronic Resource