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Gas Sensing with Bare and Graphene-covered Optical Nano-Antenna Structures

机译:裸露和石墨烯覆盖的光学纳米天线结构的气体传感

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摘要

The motivation behind this work is to study the gas phase chemical sensing characteristics of optical (plasmonic) nano-antennas (ONA) and graphene/graphene oxide-covered versions of these structures. ONA are devices that have their resonating frequency in the visible range. The basic principle governing the detection mechanism for ONA is refractive index sensing. The change in the concentration of the analyte results in a differing amount of adsorbate and correlated shifts in the resonance wavelength of the device. In this work, bare and graphene or graphene oxide covered ONA have been evaluated for gas sensing performance. Four different analytes (ethanol, acetone, nitrogen dioxide and toluene) were used in testing. ONA response behavior to different analytes was modified by adsorption within the graphene and graphene oxide overlayers. This work is a preliminary study to understand resonance wavelength shift caused by different analytes. Results imply that the combination of well-structured ONA functionalized by graphene-based adsorbers can give sensitive and selective sensors but baseline drift effects identified in this work must be addressed for applied measurements.
机译:这项工作的动机是研究光学(等离子体)纳米天线(ONA)以及这些结构的石墨烯/氧化石墨烯覆盖版本的气相化学传感特性。 ONA是谐振频率在可见范围内的设备。控制ONA检测机制的基本原理是折射率感应。分析物浓度的变化导致不同数量的被吸附物以及装置共振波​​长的相关偏移。在这项工作中,已经评估了裸露的和石墨烯或氧化石墨烯覆盖的ONA的气体传感性能。测试中使用了四种不同的分析物(乙醇,丙酮,二氧化氮和甲苯)。通过吸附在石墨烯和氧化石墨烯覆盖层中,可以改善ONA对不同分析物的响应行为。这项工作是一项初步研究,旨在了解由不同分析物引起的共振波长偏移。结果表明,通过石墨烯基吸附剂功能化的结构良好的ONA的组合可以提供灵敏和选择性的传感器,但必须进行这项工作中确定的基线漂移影响才能进行应用的测量。

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