Direct electrochemistry of glucose oxidase immobilized on Au nanoparticles-functionalized 3D hierarchically ZnO nanostructures and its application to bioelectrochemical glucose sensor

Linxia Fang, Bing Liu, Lulu Liu, Yuehua Li, Kejing Huang, Qiuyu Zhang

Research output: Contribution to journalArticlepeer-review

128 Scopus citations

Abstract

Three-dimensional (3D) hierarchically ZnO nanoarchitecture with controlled morphology and dimensions was synthesized by trisodium citrate-assisted solution phase method and functionalized by Au nanoparticles (AuNPs) via in situ reduction of HAuCl4. The as-prepared AuNPs-functionalized 3D hierarchically ZnO nanostructure (Au–ZnO nanocomposite) were used as a novel immobilization matrix for glucose oxidase (GOD) and exhibited excellent direct electron transfer properties for GOD. The AuNPs-functionalized 3D hierarchically ZnO nanostructure (Au–ZnO nanocomposite) favored the immobilization of the glucose oxidase (GOD) and the penetration of water-soluble glucose molecules, which helped efficiently catalyze the oxidation of glucose and facile direct electron transfer for GOD. The as-fabricated glucose biosensor exhibited satisfactory analytical performance with a low detection limit (0.02 mM) and an acceptable linear range from 1 to 20 mM. These results indicated that AuNPs-functionalized 3D hierarchically ZnO nanomaterial is a promising candidate material for high-performance glucose biosensors.

Original languageEnglish
Pages (from-to)1096-1102
Number of pages7
JournalSensors and Actuators, B: Chemical
Volume222
DOIs
StatePublished - Jan 2016

Keywords

  • 3D hierarchically ZnO nanostructure
  • Au nanoparticle
  • Direct electrochemistry
  • Glucose biosensor

Fingerprint

Dive into the research topics of 'Direct electrochemistry of glucose oxidase immobilized on Au nanoparticles-functionalized 3D hierarchically ZnO nanostructures and its application to bioelectrochemical glucose sensor'. Together they form a unique fingerprint.

Cite this