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锗烯纳米片中的大量和无质量等离激元。

Massive and massless plasmons in germanene nanosheets.

作者信息

Pisarra Michele, Gomez Cristian Vacacela, Sindona Antonello

机构信息

Gruppo Collegato di Cosenza, Sezione dei Laboratori Nazionali di Frascati (LNF), Istituto Nazionale di Fisica Nucleare (INFN), Cubo 31C, 87036, Rende, CS, Italy.

Facultad de Ciencias, Escuela Superior Politécnica de Chimborazo (ESPOCH), Riobamba, 060155, Ecuador.

出版信息

Sci Rep. 2022 Nov 3;12(1):18624. doi: 10.1038/s41598-022-23058-3.

Abstract

Atomically thin crystals may exhibit peculiar dispersive electronic states equivalent to free charged particles of ultralight to ultraheavy masses. A rare coexistence of linear and parabolic dispersions yields correlated charge density modes exploitable for nanometric light confinement. Here, we use a time-dependent density-functional approach, under several levels of increasing accuracy, from the random-phase approximation to the Bethe-Salpeter equation formalism, to assess the role of different synthesized germanene samples as platforms for these plasmon excitations. In particular, we establish that both freestanding and some supported germenene monolayers can sustain infrared massless modes, resolved into an out-of-phase (optical) and an in-phase (acoustic) component. We further indicate precise experimental geometries that naturally host infrared massive modes, involving two different families of parabolic charge carriers. We thus show that the interplay of the massless and massive plasmons can be finetuned by applied extrinsic conditions or geometry deformations, which constitutes the core mechanism of germanene-based optoelectronic and plasmonic applications.

摘要

原子级薄晶体可能表现出与从超轻到超重质量的自由带电粒子等效的特殊色散电子态。线性和抛物线色散的罕见共存产生了可用于纳米级光限制的相关电荷密度模式。在这里,我们使用含时密度泛函方法,在从随机相位近似到贝叶斯 - 萨尔皮特方程形式的几个不断提高精度的层次下,评估不同合成锗烯样品作为这些等离子体激元激发平台的作用。特别是,我们确定独立的和一些支撑的锗烯单层都可以维持红外无质量模式,分解为异相(光学)和同相(声学)分量。我们进一步指出了自然承载红外有质量模式的精确实验几何结构,涉及两种不同类型的抛物线电荷载流子。因此,我们表明无质量和有质量等离子体激元之间的相互作用可以通过施加的外部条件或几何变形进行微调,这构成了基于锗烯的光电子和等离子体应用的核心机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/718d/9633710/0f75c4f62acb/41598_2022_23058_Fig1_HTML.jpg

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