4.7 Article

Bimetallic PdCu nanoparticle decorated three-dimensional graphene hydrogel for non-enzymatic amperometric glucose sensor

Journal

SENSORS AND ACTUATORS B-CHEMICAL
Volume 190, Issue -, Pages 707-714

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.snb.2013.09.054

Keywords

Graphene hydrogel; Microporous structure; Bimetallic nanoparticle; Non-enzymatic glucose sensor

Funding

  1. National Natural Science Foundation of China [51272237, 61274017, 51172208]
  2. Qianjiang Talent Program of Zhejiang Province [QJD1102007]
  3. Excellent Young Talents Foundation of Key Laboratory of Advanced Textile Materials and Manufacturing Technology (Zhejiang Sci-Tech University) [2011QN05]
  4. Young Researchers Foundation of Zhejiang Provincial Top Key Academic Discipline of Applied Chemistry and Eco-Dyeing & Finishing Engineering [ZYG2012005]
  5. Scientific Research Foundation for the Returned Overseas Chinese Scholars (State Education Ministry)
  6. Technology Foundation for Selected Overseas Chinese Scholar of China

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A bimetallic PdCu nanoparticle (NP) decorated three-dimensional graphene hydrogel (PdCu/ GE) was developed by a simple one-step hydrothermal method. The PdCu/GE hybrids exhibited an interconnected microporous framework with PdCu NPs dispersed and encapsulated within the GE layers. The PdCu/GE hybrids showed significant electrocatalytic activity toward glucose oxidation due to the synergistic effect of PdCu NPs and GE sheets in the alkaline solution containing chloride ions, presenting a substantial increase in the oxidation current and decrease in the onset potential of oxidation compared to the monometallic modified GE hybrids. At an applied potential of -0.4 V, the PdCu/ GE modified electrode with optimized bimetallic ratio presented quick respond to glucose oxidation with a wide linear range up to 18 mM and a reproducible sensitivity of 48 mu A (mg mM)(-1) in the presence of chloride ions. Furthermore, the PdCu/ GE modified electrode exhibited high selectivity to glucose and resistance against poisoning by commonly interfering species such as dopamine, ascorbic acid, uric acid, acetamidophenol and some monosaccharides. The PdCu/ GE hybrid hydrogels with 3D micropores were therefore promising for the future development of non-enzymatic amperometric glucose sensors with improved electrochemical performances. (c) 2013 Elsevier B. V. All rights reserved.

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