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通过二维材料修饰表面电子波函数实现碱金属多极等离子体的终极限制从而实现线宽变窄

Linewidth Narrowing with Ultimate Confinement of an Alkali Multipole Plasmon by Modifying Surface Electronic Wave Functions with Two-Dimensional Materials.

作者信息

Tanaka Shunsuke, Yoshida Tatsuya, Watanabe Kazuya, Matsumoto Yoshiyasu, Yasuike Tomokazu, Petrović Marin, Kralj Marko

机构信息

Department of Chemistry, Graduate School of Science, Kyoto University, Kyoto 606-8502, Japan.

Department of Liberal Arts, The Open University of Japan, Chiba 261-8586, Japan.

出版信息

Phys Rev Lett. 2020 Sep 18;125(12):126802. doi: 10.1103/PhysRevLett.125.126802.

Abstract

This work demonstrates significant line narrowing of a surface multipole plasmon (MP) by modifying the surface electronic wave function with two-dimensional materials (2DMs): graphene and hexagonal boron nitride. This is found in an optical reflectivity of alkali atoms (Cs or K) on an Ir(111) surface covered with the 2DMs. The reduction in reflectivity induced by deposition of the alkali atoms becomes as large as 20% at ∼2  eV, which is ascribed to a MP of a composite of alkali/2DM/alkali/Ir multilayer structure. The linewidth of the MP band becomes as narrow as 0.2 eV by the presence of the 2DM between the two alkali layers. A numerical simulation by time-dependent density functional theory with a jellium model reveals that the density of states of the surface localized state is sharpened remarkably by the 2DMs that decouple the outermost alkali layer from the Ir bulk. Consequently, a local field enhancement of an order of 10^{5} is achieved by ultimate confinement of the MP within the outermost alkali layer. This work leads to a novel strategy for reducing plasmon dissipation in an atomically thin layer via atomic scale modification of surface structure.

摘要

这项工作通过用二维材料(2DMs):石墨烯和六方氮化硼修饰表面电子波函数,证明了表面多极等离子体(MP)的显著线宽变窄。这是在覆盖有2DMs的Ir(111)表面上碱金属原子(Cs或K)的光学反射率中发现的。在约2 eV处,碱金属原子沉积引起的反射率降低高达20%,这归因于碱金属/2DM/碱金属/Ir多层结构复合材料的MP。由于两层碱金属层之间存在2DM,MP带的线宽变得窄至0.2 eV。采用凝胶模型的含时密度泛函理论进行的数值模拟表明,2DMs使最外层碱金属层与Ir体解耦,从而显著锐化了表面局域态的态密度。因此,通过将MP最终限制在最外层碱金属层内,实现了10^5量级的局部场增强。这项工作通过表面结构的原子尺度修饰,为减少原子薄层中等离子体耗散提供了一种新策略。

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