Gold nanoparticles-induced enhancement of the analytical response of an electrochemical biosensor based on an organic–inorganic hybrid composite material

The design and characterization of a new organic–inorganic hybrid composite material for glucose electrochemical sensing are described. This material is based on the entrapment of both gold nanoparticles (AuNPs) and glucose oxidase, which was chosen as a model, into a sol–gel matrix. The addition of...

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Veröffentlicht in:Talanta (Oxford) 2009-12, Vol.80 (2), p.797-802
Hauptverfasser: Barbadillo, M., Casero, E., Petit-Domínguez, M.D., Vázquez, L., Pariente, F., Lorenzo, E.
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Sprache:eng
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Zusammenfassung:The design and characterization of a new organic–inorganic hybrid composite material for glucose electrochemical sensing are described. This material is based on the entrapment of both gold nanoparticles (AuNPs) and glucose oxidase, which was chosen as a model, into a sol–gel matrix. The addition of spectroscopic grade graphite to this system, which confers conductivity, leads to the development of a material particularly attractive for electrochemical biosensor fabrication. The characterization of the hybrid composite material was performed using atomic force microscopy and scanning electron microscopy techniques. This composite material was applied to the determination of glucose in presence of hydroxymethylferrocene as a redox mediator. The system exhibits a clear electrocatalytic activity towards glucose, allowing its determination at 250 mV vs Ag/AgCl. The performance of the resulting enzyme biosensor was evaluated in terms of sensitivity, detection limit, linear response range, stability and accuracy. Finally, the enhancement of the analytical response of the resulting biosensor induced by the presence of gold nanoparticles was evaluated by comparison with a similar organic–inorganic hybrid composite material without AuNPs.
ISSN:0039-9140
1873-3573
DOI:10.1016/j.talanta.2009.07.064