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通过石墨烯声表面等离子体激元激发增强介电纳米颗粒上的表面反冲力:非局部效应考量

Surface recoil force on dielectric nanoparticle enhancement via graphene acoustic surface plasmon excitation: non-local effect consideration.

作者信息

Olivo Julieta, Ferrari Hernan, Cuevas Mauro

出版信息

Opt Lett. 2024 Mar 1;49(5):1249-1252. doi: 10.1364/OL.511071.

Abstract

Controlling optomechanical interactions at sub-wavelength levels is of great importance in academic science and nanoparticle manipulation technologies. This Letter focuses on the improvement of the recoil force on nanoparticles placed close to a graphene-dielectric-metal structure. The momentum conservation involving the non-symmetric excitation of acoustic surface plasmons (ASPs), via near-field circularly polarized dipolar scattering, implies the occurrence of a huge momentum kick on the nanoparticle. Owing to the high wave vector values entailed in the near-field scattering process, it has been necessary to consider the non-locality of the graphene electrical conductivity to explore the influence of the scattering loss on this large wave vector region, which is neglected by the semiclassical model. Surprisingly, the contribution of ASPs to the recoil force is negligibly modified when the non-local effects are incorporated through the graphene conductivity. On the contrary, our results show that the contribution of the non-local scattering loss to this force becomes dominant when the particle is placed very close to the graphene sheet and that it is mostly independent of the dielectric thickness layer. Our work can be helpful for designing new and better performing large plasmon momentum optomechanical structures using scattering highly dependent on the polarization for moving dielectric nanoparticles.

摘要

在学术科学和纳米粒子操纵技术中,将光机械相互作用控制在亚波长水平具有至关重要的意义。本文着重探讨如何提高置于靠近石墨烯 - 电介质 - 金属结构处的纳米粒子上的反冲力。通过近场圆偏振偶极散射实现的声表面等离子体(ASP)非对称激发所涉及的动量守恒,意味着纳米粒子上会出现巨大的动量冲击。由于近场散射过程中涉及高波矢值,有必要考虑石墨烯电导率的非局域性,以探究散射损耗对这个被半经典模型忽略的大波矢区域的影响。令人惊讶的是,当通过石墨烯电导率纳入非局域效应时,ASP对反冲力的贡献变化可忽略不计。相反,我们的结果表明,当粒子非常靠近石墨烯片放置时,非局域散射损耗对该力的贡献占主导地位,并且它在很大程度上与电介质厚度层无关。我们的工作有助于设计新型且性能更优的大等离子体动量光机械结构,该结构利用对移动电介质纳米粒子的偏振高度依赖的散射。

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