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太赫兹波段近零折射率超材料中 Casimir 相互作用的研究

Effect of Epsilon-Near-Zero Modes on the Casimir Interaction between Ultrathin Films.

机构信息

Department of Electrical and Computer Engineering, University of California, Davis, California 95616, USA.

Department of Materials Science and Engineering, University of California, Davis, California 95616, USA.

出版信息

Phys Rev Lett. 2023 May 12;130(19):196901. doi: 10.1103/PhysRevLett.130.196901.

Abstract

Vacuum fluctuation-induced interactions between macroscopic metallic objects result in an attractive force between them, a phenomenon known as the Casimir effect. This force is the result of both plasmonic and photonic modes. For very thin films, field penetration through the films will modify the allowed modes. Here, we theoretically investigate the Casimir interaction between ultrathin films from the perspective of force distribution over real frequencies for the first time. Pronounced repulsive contributions to the force are found due to the highly confined and nearly dispersion-free epsilon-near-zero (ENZ) modes that only exist in ultrathin films. These contributions persistently occur around the ENZ frequency of the film irrespective of the interfilm separation. We further associate the ENZ modes with a striking thickness dependence of a proposed figure of merit (FOM) for conductive thin films, suggesting that the motion of objects induced by Casimir interactions is boosted for deeply nanoscale sizes. Our results shed light on the correlation between special electromagnetic modes and the vacuum fluctuation-induced force as well as the resulting mechanical properties of ultrathin ENZ materials, which may create new opportunities for engineering the motion of ultrasmall objects in nanomechanical systems.

摘要

真空涨落引起的宏观金属物体之间的相互作用会导致它们之间产生吸引力,这种现象被称为卡西米尔效应。这种力是等离子体和光子模式共同作用的结果。对于非常薄的薄膜,通过薄膜的场渗透会改变允许的模式。在这里,我们首次从实频上的力分布的角度,从理论上研究了超薄薄膜之间的卡西米尔相互作用。由于仅存在于超薄薄膜中的高度受限且几乎无色散的近零折射率(ENZ)模式,会发现明显的排斥贡献。这些贡献在薄膜的 ENZ 频率周围持续存在,而与薄膜之间的分离无关。我们进一步将 ENZ 模式与提出的用于导电薄膜的卓越因数(FOM)的显著厚度依赖性相关联,这表明卡西米尔相互作用引起的物体运动在深纳米尺寸下得到了增强。我们的研究结果揭示了特殊电磁模式与真空涨落引起的力之间的相关性,以及超薄 ENZ 材料的力学性能,这可能为在纳米力学系统中控制超小物体的运动创造新的机会。

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