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Electrocatalytic biofuel cell based on highly efficient metal-polymer nano-architectured bioelectrodes

Mishra, Prashant (author)
Linköpings universitet,Biosensorer och bioelektronik,Tekniska fakulteten,Institute Adv Mat, Teknikringen 4A,Mjärdevi Science Pk, S-58330 Linkoping, Sweden; University of Free State, South Africa
Lakshmi, G. B. V. S. (author)
Inter University of Accelerator Centre, India
Mishra, Sachin (author)
Linköpings universitet,Institutionen för fysik, kemi och biologi,Tekniska fakulteten,Institute Adv Mat, Teknikringen 4A,Mjärdevi Science Pk, S-58330 Linkoping, Sweden; University of Free State, South Africa
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Avasthi, D. K. (author)
Amity University, India
Swart, Hendrik C. (author)
University of Free State, South Africa
Turner, Anthony (author)
Linköpings universitet,Biosensorer och bioelektronik,Tekniska fakulteten
Mishra, Yogendra K. (author)
University of Kiel, Germany
Tiwari, Ashutosh (author)
Linköpings universitet,Institutionen för fysik, kemi och biologi,Tekniska fakulteten,Institute Adv Mat, Teknikringen 4A,Mjardevi Science Pk, S-58330 Linkoping, Sweden; Vinoba Bhave Research Institute, India
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 (creator_code:org_t)
ELSEVIER SCIENCE BV, 2017
2017
English.
In: Nano Energy. - : ELSEVIER SCIENCE BV. - 2211-2855 .- 2211-3282. ; 39, s. 601-607
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • Bioenergy based devices are rapidly gaining significant research interest because of growing quest for future alternative energy resources, but most of the existing technologies suffer from poor electron transfer and slow mass transport, which hinder the fabrication of realistic high-power devices. Using a versatile strategy, here we have demonstrated the fabrication of nanoparticle-polymer framework based bioelectrocatalytic interfaces which facilitate a high mass-transport and thus offers the simple construction of advanced enzyme-based biofuel cells. It has been shown that a gold nanoparticle-structured polyaniline network can be effectively used as an electrical cabling interface providing efficient electron transfer for bio-anode and cathode. The resulting bioelectrodes are capable of excellent diffusional mass-transport and thus can easily facilitate the design of new and highly efficient membrane-less advanced bioenergy devices. The biofuel cell delivers a high-power density of about 2.5 times (i.e., 685 mu W cm(-2)) and open circuit voltage of 760 mV compared to conventional conducting polymer-based biofuel cells.

Subject headings

NATURVETENSKAP  -- Fysik -- Den kondenserade materiens fysik (hsv//swe)
NATURAL SCIENCES  -- Physical Sciences -- Condensed Matter Physics (hsv//eng)

Keyword

Biofuel cell; Bio-catalytic interfaces; Power bioelectronics; Nano-architectured bioelectrodes

Publication and Content Type

ref (subject category)
art (subject category)

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