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Pt-polyaniline nanocomposite on boron-doped diamond electrode for amperometic biosensor with low detection limit

Authors
Song, Min-JungKim, Jong HoonLee, Seung KooLee, Jae-HyunLim, Dae SoonHwang, Sung WooWhang, Dongmok
Issue Date
12월-2010
Publisher
SPRINGER WIEN
Keywords
Electrochemical sensor; Glucose sensor; Boron-doped diamond; Effective surface area; Pt nanoparticles; Polyaniline
Citation
MICROCHIMICA ACTA, v.171, no.3-4, pp.249 - 255
Indexed
SCIE
SCOPUS
Journal Title
MICROCHIMICA ACTA
Volume
171
Number
3-4
Start Page
249
End Page
255
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/115165
DOI
10.1007/s00604-010-0432-z
ISSN
0026-3672
Abstract
Boron-doped diamond electrodes covered with a nanostructured Pt nanoparticle-polyaniline composite have been fabricated and employed as sensitive amperometric sensors with low detection limit. A highly conductive boron-doped diamond thin film (BDD) was prepared by chemical vapor deposition, and its morphology was characterized by scanning electron microscopy and transmission electron microscopy. The nanostructured composite layer was grown on the BDD electrode by electrochemical deposition of polyaniline and Pt nanoparticles. Glucose oxidase (GOx) was then adsorptively immobilized on the modified BDD electrode. The biosensor displays a large surface area, high catalytic activity of the Pt nanoparticles, efficient electron mediation through the conducting polymer, and low background current of the electrode. The biosensor exhibits an excellent response to glucose, with a broad linear range from 5.9 mu M to 0.51 mM, a sensitivity of 5.5 mu A.mM(-1), a correlation coefficient (R) of 0.9947, and a detection limit of 0.10 mu M. The apparent Michaelis-Menten constant (K-M(app)) and the maximum current density of the electrode are 4.1 mM and 0.021 mA, respectively. This suggests that the immobilized GOx possesses a higher affinity for glucose at the lower K-M(app), and that the enzymatic reaction rate constitutes the rate-limiting step of the response.
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