Functionalized single-walled carbon nanotubes/polypyrrole composites for amperometric glucose biosensors

被引:0
作者
Matei Raicopol
Alina Prună
Celina Damian
Luisa Pilan
机构
[1] University Politehnica of Bucharest,Faculty of Applied Chemistry and Materials Science
[2] University of Bucharest,Faculty of Physics
来源
Nanoscale Research Letters | / 8卷
关键词
Functionalization; Carbon nanotubes; Conductive polymers; Nanocomposite; Amperometric biosensor; Sensitivity; Selectivity;
D O I
暂无
中图分类号
学科分类号
摘要
This article reports an amperometric glucose biosensor based on a new type of nanocomposite of polypyrrole (PPY) with p-phenyl sulfonate-functionalized single-walled carbon nanotubes (SWCNTs-PhSO3−). An environmentally friendly functionalization procedure of the SWCNTs in the presence of substituted aniline and an oxidative species was adopted. The nanocomposite-modified electrode exhibited excellent electrocatalytic activities towards the reduction or oxidation of H2O2. This feature allowed us to use it as bioplatform on which glucose oxidase (GOx) was immobilized by entrapment in an electropolymerized PPY/SWCNTs-PhSO3− film for the construction of the glucose biosensor. The amperometric detection of glucose was assayed by applying a constant electrode potential value necessary to oxidize or reduce the enzymatically produced H2O2 with minimal interference from the possible coexisting electroactive compounds. With the introduction of a thin film of Prussian blue (PB) at the substrate electrode surface, the PPY/GOx/SWCNTs-PhSO3−/PB system shows synergy between the PB and functionalized SWCNTs which amplifies greatly the electrode sensitivity when operated at low potentials. The biosensor showed good analytical performances in terms of low detection (0.01 mM), high sensitivity (approximately 6 μA mM−1 cm−2), and wide linear range (0.02 to 6 mM). In addition, the effects of applied potential, the electroactive interference, and the stability of the biosensor were discussed. The facile procedure of immobilizing GOx used in the present work can promote the development of other oxidase-based biosensors which could have a practical application in clinical, food, and environmental analysis.
引用
收藏
相关论文
共 67 条
[1]  
Carrara S(2005)Improved nanocomposite materials for biosensor applications investigated by electrochemical impedance spectroscopy Sens Actuators B 109 221-226
[2]  
Bavastrello V(2008)Applications of polymers for biomolecule immobilization in electrochemical biosensors Mater Sci Eng 28 1530-1543
[3]  
Ricci D(2006)Toolbox for dispersing carbon nanotubes into polymers to get conductive nanocomposites Chem Mater 18 1089-1099
[4]  
Stura E(2007)A review of DNA functionalized/grafted carbon nanotubes and their characterization Sens Actuators B 122 672-682
[5]  
Nicolini C(2006)Functionalization of single-walled carbon nanotubes on water J Am Chem Soc 128 12899-12904
[6]  
Teles FRR(2007)Biomolecular immobilization on conducting polymers for biosensing applications Biomaterials 28 791-805
[7]  
Fonseca LP(2000)Biosensors based on novel peroxidases with improved properties in direct and mediated electron transfer Biosens Bioelectron 15 491-497
[8]  
Grossiord N(2003)Recent updates of chemically modified electrodes in analytical chemistry Electroanalysis 15 1073-1087
[9]  
Loo J(2007)Improved electrochemical properties of prussian blue by multi-walled carbon nanotubes J Electroanal Chem 603 59-66
[10]  
Regev O(1982)Spectroelectrochemistry and electrochemical preparation method of Prussian blue modified electrodes J Am Chem Soc 104 4767-4772