4.8 Article

Edge-plane microwire electrodes for highly sensitive H2O2 and glucose detection

Journal

BIOSENSORS & BIOELECTRONICS
Volume 26, Issue 9, Pages 3755-3760

Publisher

ELSEVIER ADVANCED TECHNOLOGY
DOI: 10.1016/j.bios.2011.02.021

Keywords

Glucose; Hydrogen peroxide (H2O2) biosensor; Miniaturization; Electrochemical

Funding

  1. AFOSR [FA9550-09-1-0201]
  2. NIH [ES013557]
  3. NIH/NHLBI [1-R21-HL090458-01]
  4. Telemedicine and Advanced Technology Research Center (TATRC) at the U.S. Army Medical Research and Material Command (USAMRMC) [W81XWH-07-10668, W81XWH-09-1-0711]
  5. National Institute of Biomedical Imaging Bioengineering [R43EB011886]

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The promise of implantable electrochemical sensors is often undermined by the critical requirement of device miniaturization that inadvertently degrades sensor performance in terms of sensitivity and selectivity. Herein, we report a novel miniaturized and flexible amperometric sensor grown at the 'edge plane' of a 25-mu m gold wire. Such geometry affords extreme miniaturization along with ease of fabrication, minimal iR drop and 3-D diffusion for effective mass transfer. This together with electrochemical rebuilding of the Au working electrode and subsequent Pt nanoparticles deposition resulted in the highest H2O2 sensitivity (33 mA mM(-1) cm(-2)), reported thus far. Concurrent electrodeposition of o-phenylenediamine with glucose oxidase afforded glucose detection at these edge-plane microsensors with a six fold improvement in sensitivity (1.2 mA mM(-1) cm(-2)) over previous reports. In addition, these sensors exhibit low operation potential (0.3V), high selectivity (more than 95%) against in vivo interferences, and an apparent Michealis-Menten constant (K-m(app)) of 17 and 75 mM of glucose in the absence and presence of an outer polyurethane coating, respectively. These features render the edge-plane sensor architecture as a powerful platform for next-generation implantable biosensors. (C) 2011 Elsevier B.V. All rights reserved.

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