论文标题

石墨烯双层中相对面内扭曲对使用表面等离子体共振感测的影响

Effect of relative in-plane twisting in graphene bilayer on sensing using surface plasmon resonance

论文作者

Kumar, Amrit, V, Manjuladevi, Gupta, R. K.

论文摘要

通常通过在金属(AU/Ag)表面上激发表面等离子体极化子来观察表面等离子体共振(SPR)。为了利用SPR现象来传感应用,金属表面可以用合适的配体功能化。尽管这种功能化可以增强传感器的特定吸附能力,但是由于配体的厚度较大,但金属表面的等离子场对分析物的吸附敏感性较小。在下一代SPR的传感器中,石墨烯不仅可以用作等离激子材料,而且还可以用作合适的配体,用于通过π-π相互作用吸引分析物。在本文中,我们介绍了使用石墨烯单层(MLG),双层石墨烯(BLG)和BLG(T-BLG)的平面内扭曲层作为等离激元材料沉积在锌 - 固醇基质上的等离激元材料的理论模拟研究。模拟了波长询问设置下的Kretschmann配置,并估计了石墨烯系统/水接口的SPR波长。进行了生物密度模拟,并进行感应参数。获得了不同石墨烯系统的敏感性,图形(FOM)和等离子场。有趣的是,在T-BLG系统中发现了出色的传感参数,其平面内扭角接近魔术角。 1o。增强是由于以魔术角扭曲的层之间的强耦合所致。这项研究表明,单层,双层和扭曲的双层石墨烯不仅可以作为独立的层系统,不仅可以产生等离子场,而且还可以增强感测,因为其内在的PI-PI与生物分析的相互作用。

Surface plasmon resonance (SPR) is generally observed by excitation of surface plasmon polaritons on the metal (Au/Ag) surface. In order to utilize the SPR phenomenon for sensing application, the metal surface is functionalized with suitable ligands. Although such functionalization can enhance the specific adsorption capability of the sensor however due to large thickness of the ligands, the plasmonic field of the metal surface becomes less sensitive towards the adsorption of analytes. In the next generation SPR based sensor, graphene can be utilized not only as plasmonic material but also a suitable ligand for attracting analytes through π-π interaction. In this article, we present our theoretical simulation studies on the observation of SPR phenomenon using graphene monolayer (MLG), bilayer graphene (BLG) and in-plane twisted layers of BLG (T-BLG) as plasmonic materials deposited over Zinc-Selenide substrate. The Kretschmann configuration under wavelength interrogation setup was simulated and SPR wavelength for graphene systems/water interface was estimated. The bio-sensing simulation was performed and the sensing parameters viz. sensitivity, figure-of-merit (FOM) and plasmonic field for different graphene systems were obtained. Interestingly, the excellent sensing parameters were found in T-BLG system with relative in-plane twist angle near to magic angle viz. 1o. The enhancement is due to strong coupling between the layers twisted at the magic angle. This study demonstrates that the monolayer, bilayer and twisted bilayer graphene can be employed as a standalone layer system for not only generation of plasmonic fields but also enhanced sensing due to its intrinsic pi-pi interactions with bio-analytes.

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