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纳米结构磷烯中的非线性等离子体激元学

Nonlinear Plasmonics in Nanostructured Phosphorene.

作者信息

Jelver Line, Cox Joel D

机构信息

POLIMA─Center for Polariton-driven Light-Matter Interactions, University of Southern Denmark, Campusvej 55, DK-5230 Odense M, Denmark.

Danish Institute for Advanced Study, University of Southern Denmark, Campusvej 55, DK-5230 Odense M, Denmark.

出版信息

ACS Nano. 2023 Oct 24;17(20):20043-20052. doi: 10.1021/acsnano.3c05363. Epub 2023 Oct 4.

Abstract

Phosphorene has emerged as an atomically thin platform for optoelectronics and nanophotonics due to its excellent optical properties and the possibility of actively tuning light-matter interactions through electrical doping. While phosphorene is a two-dimensional semiconductor, plasmon resonances characterized by pronounced anisotropy and strong optical confinement are anticipated to emerge in highly doped samples. Here we show that the localized plasmons supported by phosphorene nanoribbons (PNRs) exhibit high tunability in relation to both edge termination and doping charge polarity and can trigger an intense nonlinear optical response at moderate doping levels. Our explorations are based on a theoretical framework, employing maximally localized Wannier functions constructed from electronic structure calculations, which we introduce here to describe the linear and nonlinear optical response of PNRs on mesoscopic length scales. Atomistic simulations reveal the high tunability of plasmons in doped PNRs at near-infrared frequencies, which can facilitate the synergy between the electronic band structure and plasmonic field confinement to drive efficient high-harmonic generation. Our findings establish nanostructured phosphorene as a versatile atomically thin material candidate for nonlinear plasmonics.

摘要

由于其优异的光学性质以及通过电掺杂主动调节光与物质相互作用的可能性,磷烯已成为光电子学和纳米光子学领域的一种原子级薄平台。虽然磷烯是一种二维半导体,但预计在高掺杂样品中会出现具有明显各向异性和强光限制特性的等离子体共振。在此,我们表明,磷烯纳米带(PNR)所支持的局域等离子体激元在边缘终止和掺杂电荷极性方面均表现出高度可调性,并且在中等掺杂水平下能够引发强烈的非线性光学响应。我们的探索基于一个理论框架,该框架采用由电子结构计算构建的最大局域化万尼尔函数,我们在此引入该函数以描述PNR在介观长度尺度上的线性和非线性光学响应。原子模拟揭示了掺杂PNR在近红外频率下等离子体激元的高度可调性,这有助于电子能带结构与等离子体场限制之间的协同作用,从而驱动高效的高次谐波产生。我们的研究结果确立了纳米结构磷烯作为非线性等离子体学中一种通用的原子级薄材料候选物的地位。

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