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追求具有最大光学响应的二维材料。

In Pursuit of 2D Materials for Maximum Optical Response.

作者信息

Gupta Sunny, Shirodkar Sharmila N, Kutana Alex, Yakobson Boris I

机构信息

Department of Materials Science and NanoEngineering , Rice University , Houston , Texas 77005 , United States.

出版信息

ACS Nano. 2018 Nov 27;12(11):10880-10889. doi: 10.1021/acsnano.8b03754. Epub 2018 Sep 21.

DOI:10.1021/acsnano.8b03754
PMID:30226752
Abstract

Despite being only a few atoms thick, single-layer two-dimensional (2D) materials display strong electron-photon interactions that could be utilized in efficient light modulators on extreme subwavelength scales. In various applications involving light modulation and manipulation, materials with strong optical response at different wavelengths are required. Using qualitative analytical modeling and first-principles calculations, we determine the theoretical limit of the maximum optical response such as absorbance ( A) and reflectance ( R) in 2D materials and also conduct a computational survey to seek out those with best A and R in various frequency ranges, from mid-infrared to deep-ultraviolet. We find that 2D boron has broadband reflectance R > 99% for >100 layers, surpassing conventional thin films of bulk metals such as silver. Moreover, we identify 2D monolayer semiconductors with maximum response, for which we obtain quantitative estimates by calculating quasiparticle energies and accounting for excitonic effects by solving the Bethe-Salpeter equation. We found several monolayer semiconductors with absorbances ≳30% in different optical ranges, which are more than half of the maximum possible value, A = 1/2, for a freestanding 2D material. Our study predicts 2D materials which can potentially be used in ultrathin reflectors and absorbers for optoelectronic application in various frequency ranges.

摘要

尽管单层二维(2D)材料仅有几个原子厚,但却表现出强大的电子 - 光子相互作用,这可用于极端亚波长尺度的高效光调制器中。在各种涉及光调制和操纵的应用中,需要在不同波长下具有强光学响应的材料。我们通过定性分析建模和第一性原理计算,确定了二维材料中最大光学响应(如吸光度(A)和反射率(R))的理论极限,并进行了计算研究,以寻找在从中红外到深紫外的各种频率范围内具有最佳A和R的材料。我们发现,对于超过100层的二维硼,其宽带反射率R>99%,超过了诸如银等块状金属的传统薄膜。此外,我们识别出具有最大响应的二维单层半导体,并通过计算准粒子能量并求解贝特 - 萨尔皮特方程来考虑激子效应,从而获得了定量估计。我们发现了几种在不同光学范围内吸光度≳30%的单层半导体,这超过了独立二维材料最大可能值A = 1/2的一半。我们的研究预测了二维材料可潜在用于各种频率范围的光电子应用中的超薄反射器和吸收器。

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