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Rational Design of Yolk-Shell CuO/Silicalite-1@mSiO2 Composites for a High-Performance Nonenzymatic Glucose Biosensor.
Cheng, Xiaowei; Zhao, Haochen; Huang, Wenfeng; Chen, Jinyang; Wang, Shixia; Dong, Junping; Deng, Yonghui.
Afiliação
  • Cheng X; Department of Chemistry, State Key Laboratory of Molecular Engineering of Polymers, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, iChEM (Collaborative Innovation Center of Chemistry for Energy Materials) , Fudan University , Shanghai 200433 , China.
  • Zhao H; College of Science , University of Shanghai for Science and Technology , Shanghai 200093 , China.
  • Huang W; School of Environmental and Chemical Engineering , Shanghai University , Shanghai 200444 , China.
  • Chen J; School of Environmental and Chemical Engineering , Shanghai University , Shanghai 200444 , China.
  • Wang S; College of Science , University of Shanghai for Science and Technology , Shanghai 200093 , China.
  • Dong J; Department of Chemistry, College of Science , Shanghai University , Shanghai 200444 , China.
  • Deng Y; Department of Chemistry, State Key Laboratory of Molecular Engineering of Polymers, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, iChEM (Collaborative Innovation Center of Chemistry for Energy Materials) , Fudan University , Shanghai 200433 , China.
Langmuir ; 34(26): 7663-7672, 2018 07 03.
Article em En | MEDLINE | ID: mdl-29871483
ABSTRACT
In this study, an interface coassembly strategy is employed to rationally synthesize a yolk-shell CuO/silicalite-1@void@mSiO2 composite consisting of silicalite-1 supported CuO nanoparticles confined in the hollow space of mesoporous silica, and the obtained composite materials were used as a novel nonenzymatic biosensor for highly sensitive and selective detecting glucose with excellent anti-interference ability. The synthesis of CuO/silicalite-1@mSiO2 includes four

steps:

coating silicalite-1 particles with resorcinol-formaldehyde polymer (RF), immobilization of copper species, interface deposition of a mesoporous silica layer, and final calcination in air to decompose RF and form CuO nanoparticles. The unique hierarchical porous structure with mesopores and micropores is beneficial to selectively enrich glucose for fast oxidation into gluconic acid. Besides, the mesopores in the silica shell can effectively inhibit the large interfering substances or biomacromolecules diffusing into the void as well as the loss of CuO nanoparticles. The hollow chamber inside serves as a nanoreactor for glucose oxidation catalyzed by the active CuO nanoparticles, which are spatially accessible for glucose molecules. The nonenzymatic glucose biosensors based on CuO/silicalite-1@mSiO2 materials show excellent electrocatalytic sensing performance with a wide linear range (5-500 µM), high sensitivity (5.5 µA·mM-1·cm-2), low detection limit (0.17 µM), and high selectivity against interfering species. Furthermore, the unique sensors even display a good capability in the determination of glucose in real blood serum samples.
Assuntos

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Técnicas Biossensoriais / Dióxido de Silício / Cobre / Glucose Idioma: En Ano de publicação: 2018 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Técnicas Biossensoriais / Dióxido de Silício / Cobre / Glucose Idioma: En Ano de publicação: 2018 Tipo de documento: Article