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Cited 58 time in webofscience Cited 62 time in scopus
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Ultrarapid sonochemical synthesis of enzyme-incorporated copper nanoflowers and their application to mediatorless glucose biofuel cell

Authors
Chung, MinsooTuan Loi NguyenThao Quynh Ngan TranYoon, Hyon HeeKim, Il TaeKim, Moon Il
Issue Date
31-Jan-2018
Publisher
ELSEVIER SCIENCE BV
Keywords
Glucose biofuel cell; Enzyme inorganic hybrid nanoflowers; Glucose oxidase; Laccase; Stability
Citation
APPLIED SURFACE SCIENCE, v.429, pp.203 - 209
Journal Title
APPLIED SURFACE SCIENCE
Volume
429
Start Page
203
End Page
209
URI
https://scholarworks.bwise.kr/gachon/handle/2020.sw.gachon/4146
DOI
10.1016/j.apsusc.2017.06.242
ISSN
0169-4332
Abstract
We have developed a mediatorless glucose biofuel cell based on hybrid nanoflowers incorporating enzymes including glucose oxidase (GOx), laccase, or catalase with copper phosphate, which were further mixed and compressed with conductive multi-walled carbon nanotube (CNT). The nanoflowers were simply synthesized within 5 min at room temperature using sonication method but yielded greatly improved stability as well as highly retained activity by the proper incorporation of enzyme molecules inside the flower-like structure. With glucose as biofuel, GOx and laccase nanoflowers were applied to form enzyme anode and cathode, respectively, and catalase nanoflowers were additionally employed to catalyze the decomposition of hydrogen peroxide, which may be deleterious for GOx, into oxygen and water. Using the enzyme nanoflowers-based biofuel cell system without any involved mediator, a high power density up to 200 mu W cm(-2) were obtained, which was approximately 80% to that from the biofuel cell system prepared with the corresponding free enzymes. Importantly, the enzyme nanoflowers-based biofuel cell maintained their initial power density over 90% during storage for two months at 4 degrees C, while most of the glucose biofuel cells in the literature present meaningful stability only in the range of one or two weeks. Based on this result, we expect that this simple but efficient strategy to prepare highly stable glucose biofuel cell using the rapidly-synthesized enzyme-inorganic hybrid nanoflowers can be readily extended to diverse applications in medical and environmental chemistry. (C) 2017 Elsevier B.V. All rights reserved.
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