Enzymeless glucose sensor integrated with chronically implantable nerve cuff electrode for in-situ inflammation monitoring

Authors
Lee, Yi JaePark, Sung JinYun, Kwang-SeokKang, Ji YoonLee, Soo Hyun
Issue Date
2016-01
Publisher
ELSEVIER SCIENCE SA
Citation
SENSORS AND ACTUATORS B-CHEMICAL, v.222, pp.425 - 432
Abstract
Using glucose concentration as an inflammation responsive element, we newly established an enzymeless glucose sensor integrated with a chronically implantable peripheral nerve cuff electrode for continuous and in-situ monitoring of local inflammation. The glucose sensor integrated with a nerve cuff electrode was fabricated on a polyimide substrate side-by-side, then the glucose sensor and nerve cuff electrode were reversely folded, and were located inside and outside, respectively. The experimental results reveal that the electroplated black Pt working electrode of the glucose sensor shows an enhancive surface roughness factor of 16.41 and had a good distribution on the flexible polyimide surface, which exhibits distinctly enhanced electro-catalytic activity compared to that obtained with plain Pt. Amperometry and electrochemical impedance spectroscopy indicated that the fabricated sensor had a sensitivity of 7.17 mu A/mM cm(2), an outstanding detection limit of 10 mu M, significant selectivity, and excellent recovery performance for enzymeless glucose detection. In order to evaluate the feasibility for inflammation monitoring in the immediate vicinity of the implantable peripheral nerve cuff electrode, the association of an evoked nerve signal recording and glucose concentration was investigated through ex-vivo test using the sciatic nerve of a SD rat. (C) 2015 Elsevier B.V. All rights reserved.
Keywords
PLATINUM; BLACK; NANOCOMPOSITE; OXIDE; PLATINUM; BLACK; NANOCOMPOSITE; OXIDE; Enzymeless; Glucose sensor; Nerve cuff electrode; Black Pt; Nafion; Inflammation; Chronic implantation
ISSN
0925-4005
URI
https://pubs.kist.re.kr/handle/201004/124582
DOI
10.1016/j.snb.2015.08.091
Appears in Collections:
KIST Article > 2016
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