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近邻纳米立方体二聚体红外等离激元中的奇异与非奇异跃迁

Singular and Nonsingular Transitions in the Infrared Plasmons of Nearly Touching Nanocube Dimers.

作者信息

Wu Yina, Konečná Andrea, Cho Shin Hum, Milliron Delia J, Hachtel Jordan A, García de Abajo F Javier

机构信息

the Barcelona Institute of Science and Technology, ICFO-Institut de Ciencies Fotoniques, Castelldefels, Barcelona 08860, Spain.

Institute of Physical Engineering, Brno University of Technology, Brno 61669, Czech Republic.

出版信息

ACS Nano. 2024 Jun 11;18(23):15130-15138. doi: 10.1021/acsnano.4c02644. Epub 2024 May 28.

Abstract

Narrow gaps between plasmon-supporting materials can confine infrared electromagnetic energy at the nanoscale, thus enabling applications in areas such as optical sensing. However, in nanoparticle dimers, the nature of the transition between touching (zero gap) and nearly nontouching (nonzero gap ≲15 nm) regimes is still a subject of debate. Here, we observe both singular and nonsingular transitions in infrared plasmons confined to dimers of fluorine-doped indium oxide nanocubes when moving from touching to nontouching configurations depending on the dimensionality of the contact region. Through spatially resolved electron energy-loss spectroscopy, we find a continuous spectral evolution of the lowest-order plasmon mode across the transition for finite touching areas, in excellent agreement with the simulations. This behavior challenges the widely accepted idea that a singular transition always emerges in the near-touching regime of plasmonic particle dimers. The apparent contradiction is resolved by theoretically examining different types of gap morphologies, revealing that the presence of a finite touching area renders the transition nonsingular, while one-dimensional and point-like contacts produce a singular behavior in which the lowest-order dipolar mode in the touching configuration, characterized by a net induced charge in each of the particles, becomes unphysical as soon as they are separated. Our results provide valuable insights into the nature of dimer plasmons in highly doped semiconductors.

摘要

等离激元支撑材料之间的窄间隙能够在纳米尺度上限制红外电磁能,从而实现诸如光学传感等领域的应用。然而,在纳米颗粒二聚体中,从接触(零间隙)到近非接触(非零间隙≲15纳米)状态之间的转变性质仍是一个有争议的话题。在此,当从接触构型转变为非接触构型时,我们观察到局限于氟掺杂氧化铟纳米立方体二聚体中的红外等离激元出现了奇异和非奇异转变,这取决于接触区域的维度。通过空间分辨电子能量损失谱,我们发现对于有限的接触区域,最低阶等离激元模式在转变过程中呈现出连续的光谱演化,这与模拟结果高度吻合。这种行为挑战了广泛接受的观点,即等离激元颗粒二聚体的近接触状态总是会出现奇异转变。通过从理论上研究不同类型的间隙形态,解决了这一明显的矛盾,结果表明有限接触区域的存在使得转变变为非奇异,而一维和点状接触则产生奇异行为,即在接触构型中以每个颗粒中的净感应电荷为特征的最低阶偶极模式,一旦它们分离就变得不物理。我们的结果为高掺杂半导体中二聚体等离激元的性质提供了有价值的见解。

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