High-sensitivity non-enzymatic glucose biosensor based on Cu(OH)(2) nanoflower electrode covered with boron-doped nanocrystalline diamond layer
- Authors
- Sim, Huijun; Kim, Jong-Hoon; Lee, Seung-Koo; Song, Min-Jung; Yoon, Dong-Hwa; Lim, Dae-Soon; Hong, Suk-In
- Issue Date
- 1-10월-2012
- Publisher
- ELSEVIER SCIENCE SA
- Keywords
- Boron-doped diamond; Nanocrystalline diamond; Copper hydroxide; Nanostructures; Amperometric glucose sensor; Crystallization from solution; Chemical vapor deposition
- Citation
- THIN SOLID FILMS, v.520, no.24, pp.7219 - 7223
- Indexed
- SCIE
SCOPUS
- Journal Title
- THIN SOLID FILMS
- Volume
- 520
- Number
- 24
- Start Page
- 7219
- End Page
- 7223
- URI
- https://scholar.korea.ac.kr/handle/2021.sw.korea/107231
- DOI
- 10.1016/j.tsf.2012.08.011
- ISSN
- 0040-6090
- Abstract
- A non-enzymatic biosensor was developed using boron-doped nanocrystalline diamond (BDND) based on a Cu electrode with Cu(OH)(2) dendritic architecture. The Cu(OH)(2) nanoflower electrode was covered with a BDND layer using an electrostatic self-assembly seeding method with nanodiamond particles and hot-filament chemical vapor deposition. X-ray diffraction and Raman spectral analysis confirmed that the BDND nanoflower electrode was synthesized onto Cu(OH)(2) nanoflowers. Field-emission scanning electron microscope images showed that the fabricated electrodes were nanoflowers possessing large surface areas. From cyclic voltammetry, the peak currents of an BDND/Cu(OH)(2)/Cu electrode was about 7, 6.2, and 5.9 times higher than that of the Cu foil, Cu(OH)(2)/Cu, and BDND/Cu electrodes, respectively. A biosensor based on BDND/Cu(OH)(2)/Cu exhibited excellent performance for glucose detection, and it had a linear detection range of 0 to 6 mM, a correlation coefficient of 0.9994, a low detection limit of 9 mu M, and a high sensitivity of 2.1592 mA mM(-1) cm(-1). (C) 2012 Elsevier B.V. All rights reserved.
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Collections - College of Engineering > Department of Materials Science and Engineering > 1. Journal Articles
- College of Engineering > Department of Chemical and Biological Engineering > 1. Journal Articles
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