4.8 Article

Facile fabrication of network film electrodes with ultrathin Au nanowires for nonenzymatic glucose sensing and glucose/O2 fuel cell

Journal

BIOSENSORS & BIOELECTRONICS
Volume 52, Issue -, Pages 105-110

Publisher

ELSEVIER ADVANCED TECHNOLOGY
DOI: 10.1016/j.bios.2013.08.038

Keywords

Network film electrode; Nonenzymatic glucose sensing; Glucose/O-2 fuel cell; Ultrathin Au nanowires

Funding

  1. National Natural Science Foundation of China [21305041, 21075036, 21175042, 20975038, 21275052]
  2. Program for Science and Technology Innovative Research Team in Higher Educational Institutions of Hunan Province
  3. Start-Up Fund for Young Teachers in Hunan Normal University

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We report here on the facile fabrication of network film electrodes with ultrathin Au nanowires (AuNWs) and their electrochemical applications for high-performance nonenzymatic glucose sensing and glucose/O-2 fuel cell under physiological conditions (pH 7.4, containing 0.15 M Cl-). AuNWs with an average diameter of similar to 7 or 2 nm were prepared and can self-assemble into robust network films on common electrodes. The network film electrode fabricated with 2-nm AuNWs exhibits high sensitivity (56.0 mu A cm(-2) mM(-1)), low detection limit (20 mu M), short response time (within 10 s), excellent selectivity, and good storage stability for nonenzymatic glucose sensing. Glucose/O-2 fuel cells were constructed using network film electrodes as the anode and commercial Pt/C catalyst modified glassy carbon electrode as cathode. The glucose/O-2 fuel cell using 2-nm AuNWs as anode catalyst output a maximum power density of is 126 mu W cm(-2), an open-circuit cell voltage of 0.425 V, and a short-circuit current density of 1.34 mA cm(-2), respectively. Due to the higher specific electroactive surface area of 2-nm AuNWs, the network film electrode fabricated with 2-nm AuNWs exhibited higher electrocatalytic activity toward glucose oxidation than the network film electrode fabricated with 7-nm AuNWs. The network film electrode exhibits high electrocatalytic activity toward glucose oxidation under physiological conditions, which is helpful for constructing implantable electronic devices. (C) 2013 Elsevier B.V. All rights reserved.

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