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用于灵敏和选择性 NO 检测的高导电和柔韧的多巴胺-石墨烯混合电子纺织纱线。

Highly Conductive and Flexible Dopamine-Graphene Hybrid Electronic Textile Yarn for Sensitive and Selective NO Detection.

机构信息

School of Biomedical Engineering, Korea University, Seoul 02841, South Korea.

Department of Control and Instrumentation Engineering, Korea University, Sejong 30019, South Korea.

出版信息

ACS Appl Mater Interfaces. 2020 Oct 14;12(41):46629-46638. doi: 10.1021/acsami.0c11435. Epub 2020 Sep 24.

Abstract

Graphene-based electronic textile (e-textile) gas sensors have been developed for detecting hazardous NO gas. For the e-textile gas sensor, electrical conductivity is a critical factor because it directly affects its sensitivity. To obtain a highly conductive e-textile, biomolecules have been used for gluing the graphene to the textile surface, though there remain areas to improve, such as poor conductivity and flexibility. Herein, we have developed a dopamine-graphene hybrid electronic textile yarn (DGY) where the dopamine is used as a bio-inspired adhesive to attach graphene to the surface of yarns. The DGY shows improved electrical conductivity (∼40 times) compared to conventional graphene-based e-textile yarns with no glue. Moreover, it exhibited improved sensing performance in terms of short response time (∼2 min), high sensitivity (0.02 μA/ppm), and selectivity toward NO. The mechanical flexibility and durability of the DGY were examined through a 1000-cycle bending test. For a practical application, the DGY was attempted to detect the NO emitted from vehicles, including gasoline, diesel, and fuel cell electric vehicles. Our results demonstrated that the DGYs-as a graphene-based e-textile gas sensor for detecting NO-are simple to fabricate, cheap, disposable, and mechanically stable.

摘要

基于石墨烯的电子纺织品(e-textile)气体传感器已被开发用于检测有害的 NO 气体。对于 e-textile 气体传感器,电导率是一个关键因素,因为它直接影响其灵敏度。为了获得高导电性的 e-textile,已经使用生物分子将石墨烯粘接到纺织品表面,尽管仍有一些改进的空间,例如导电性和灵活性差。在此,我们开发了一种多巴胺-石墨烯混合电子纺织纱线(DGY),其中多巴胺被用作生物启发型粘合剂,将石墨烯附着到纱线表面。与没有胶水的传统基于石墨烯的 e-textile 纱线相比,DGY 显示出改善的电导率(约 40 倍)。此外,它在响应时间(约 2 分钟)短、灵敏度(0.02 μA/ppm)高和对 NO 的选择性方面表现出改善的传感性能。通过 1000 次弯曲测试检查了 DGY 的机械灵活性和耐用性。为了实际应用,尝试使用 DGY 检测来自车辆的 NO 排放,包括汽油、柴油和燃料电池电动汽车。我们的结果表明,DGY 作为用于检测 NO 的基于石墨烯的 e-textile 气体传感器易于制造、廉价、一次性且机械稳定。

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