Solution Chemistry of Self-Assembled Graphene Nanohybrids for High-Performance Flexible Biosensors

We report the preparation of free-standing flexible conductive reduced graphene oxide/Nafion (RGON) hybrid films by a solution chemistry that utilizes self-assembly and directional convective-assembly. The hydrophobic backbone of Nafion provided well-defined integrated structures, on micro- and macr...

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Veröffentlicht in:ACS nano 2010-05, Vol.4 (5), p.2910-2918
Hauptverfasser: Choi, Bong Gill, Park, HoSeok, Park, Tae Jung, Yang, Min Ho, Kim, Joon Sung, Jang, Sung-Yeon, Heo, Nam Su, Lee, Sang Yup, Kong, Jing, Hong, Won Hi
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Sprache:eng
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Zusammenfassung:We report the preparation of free-standing flexible conductive reduced graphene oxide/Nafion (RGON) hybrid films by a solution chemistry that utilizes self-assembly and directional convective-assembly. The hydrophobic backbone of Nafion provided well-defined integrated structures, on micro- and macroscales, for the construction of hybrid materials through self-assembly, while the hydrophilic sulfonate groups enabled highly stable dispersibility (∼0.5 mg/mL) and long-term stability (2 months) for graphene. The geometrically interlocked morphology of RGON produced a high degree of mechanical integrity in the hybrid films, while the interpenetrating network constructed favorable conduction pathways for charge transport. Importantly, the synergistic electrochemical characteristics of RGON were attributed to high conductivity (1176 S/m), facilitated electron transfer (ET), and low interfacial resistance. Consequently, RGON films obtained the excellent figure of merit as electrochemical biosensing platforms for organophosphate (OP) detection, that is, a sensitivity of 10.7 nA/μM, detection limit of 1.37 × 10−7 M, and response time of
ISSN:1936-0851
1936-086X
DOI:10.1021/nn100145x