DocumentCode
962566
Title
Direct Electron Transfer Reactivity of Glucose Oxidase on Electrodes Modified With Zirconium Dioxide Nanoparticles
Author
Yang, Xiaodi ; Zhang, Qianqian ; Sun, Yuming ; Liu, Songqin
Author_Institution
Nanjing Normal Univ., Nanjing
Volume
7
Issue
12
fYear
2007
Firstpage
1735
Lastpage
1741
Abstract
The direct electron transfer between electrodes and glucose oxidase (GOD) immobilized in a matrix containing zirconium dioxide nanoparticles (ZrO2) is described. The protein-nanoparticle assembly is stabilized by charged and uncharged compounds and the direct electron transfer is enhanced. The effects of different compositions on the electrochemical parameters, formal potential, surface loading, and constant heterogeneous electron transfer rate are characterized with cyclic voltammetry. The fastest electron transfer rate with the smallest deviation of the is obtained when GOD is immobilized with ZrO2 nanoparticles, colloidal platinum and poly-Lysine (PLL). Incorporation of charged compounds for immobilization of GOD causes a larger positive shift of the formal potential. Electrochemical and spectroscopic measurements show that the GOD entrapped in ZrO2/Pt-PLL or ZrO2/Pt-PVA film retains its bioactivity efficiently and exhibits excellent electrocatalytic behavior towards glucose. No enzymatic activity of the immobilized GOD can be observed on ZrO2/DMSO and ZrO2/DDAB film.
Keywords
biosensors; catalysis; charge exchange; colloids; electrochemical electrodes; electrochemistry; macromolecules; nanoparticles; platinum; proteins; voltammetry (chemical analysis); zirconium compounds; ZrO2; bioactivity; charged compounds; cyclic voltammetry; direct electron transfer; electrocatalytic behavior; electrochemical parameters; electrodes; enzymatic activity; film; formal potential; glucose oxidase; immobilization; poly-Lysine; protein-nanoparticle assembly; surface loading; Assembly; Electrodes; Electrons; Nanoparticles; Phase locked loops; Platinum; Proteins; Spectroscopy; Sugar; Zirconium; Direct electron transfer; glucose oxidase (GOD); modified electrode; nanoparticles; zirconium dioxide;
fLanguage
English
Journal_Title
Sensors Journal, IEEE
Publisher
ieee
ISSN
1530-437X
Type
jour
DOI
10.1109/JSEN.2007.910068
Filename
4375318
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