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Enhanced light-matter interaction of graphene-gold nanoparticle hybrid films for high-performance SERS detection

机译:增强石墨烯-金纳米颗粒杂化膜的光-质相互作用,用于高性能SERS检测

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By simply coating graphene films on Au nanoparticles, the optical properties of the hybrid films are investigated. It is found that the coverage of a monolayer graphene film leads to a decreased transmittance of up to 15.8% in the visible range, much higher than the 2.3% transmittance loss for intrinsic graphene. At the same time, the plasmonic resonance of the hybrid films experiences a red-shift in resonance frequency and a broadening in the transmission dip. By means of finite element simulations, these observations are attributed to strong light-matter interaction at the interface between graphene and Au nanoparticles, as indicated by the increased absorption cross section and higher electric field intensity. The electron transfer between graphene and Au nanoparticles is confirmed by high resolution X-ray photoelectron spectroscopy studies. Furthermore, the enhanced electromagnetic hot spots at the interface between graphene and Au nanoparticles make such graphene-Au nanoparticle hybrid films cost-effective and high-performance surface-enhanced Raman scattering substrates for detecting organic molecules such as rhodamine-6G, for which an enhancement factor of ~10~7 is achieved.
机译:通过简单地在Au纳米颗粒上涂覆石墨烯薄膜,研究了杂化薄膜的光学特性。发现单层石墨烯膜的覆盖率导致在可见光范围内透射率降低至多15.8%,远高于固有石墨烯的2.3%透射率损失。同时,混合膜的等离子体共振经历共振频率的红移和透射率下降的扩大。通过有限元模拟,这些观察结果归因于在石墨烯和Au纳米颗粒之间的界面处强烈的光-物质相互作用,如增加的吸收截面和较高的电场强度所表明。石墨烯和金纳米颗粒之间的电子转移已通过高分辨率X射线光电子能谱研究得到了证实。此外,石墨烯和Au纳米颗粒之间的界面处增强的电磁热点使这种石墨烯-Au纳米颗粒杂化膜具有成本效益和高性能的表面增强拉曼散射基板,可用于检测罗丹明6G等有机分子。达到〜10〜7的倍数。

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