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单层半导体磷同素异形体中的二维激子特性。

Two-dimensional exciton properties in monolayer semiconducting phosphorus allotropes.

作者信息

Villegas Cesar E P, Rodin A S, Carvalho Alexandra, Rocha A R

机构信息

Istituto di Struttura della Materia of the National Research Council, Via Salaria Km 29.3, I-00016 Monterotondo Stazione, Italy and Instituto de Física Teórica, Universidade Estadual Paulista (UNESP), Rua Dr. Bento T. Ferraz, 271, São Paulo, SP 01140-070, Brazil.

Centre for Advanced 2D Materials and Graphene Research Centre, National University of Singapore, 6 Science Drive 2, Singapore 117546, Singapore.

出版信息

Phys Chem Chem Phys. 2016 Oct 12;18(40):27829-27836. doi: 10.1039/c6cp05566d.

Abstract

Excitons play a key role in technological applications since they have a strong influence on determining the efficiency of photovoltaic devices. Recently, it has been shown that the allotropes of phosphorus possess an optical band gap that can be tuned over a wide range of values including the near-infrared and visible spectra, which would make them promising candidates for optoelectronic applications. In this work we carry out ab initio many-body perturbation theory calculations to study the excitonic effects on the optical properties of two-dimensional phosphorus allotropes: the case of blue and black monolayers. We elucidate the most relevant optical transitions, exciton binding energy spectrum as well as real-space exciton distribution, particularly focusing on the absorption spectrum dependence on the incident light polarization. In addition, based on our results, we use a set of effective hydrogenic models, in which the electron-hole Coulomb interaction is included to estimate exciton binding energies and radii. Our results show an excellent agreement between the many-body methodology and the effective models.

摘要

激子在技术应用中起着关键作用,因为它们对确定光伏器件的效率有很大影响。最近,研究表明磷的同素异形体具有一个光学带隙,该带隙可以在包括近红外和可见光谱在内的很宽的值范围内进行调节,这将使它们成为光电子应用的有前途的候选材料。在这项工作中,我们进行了从头算多体微扰理论计算,以研究激子对二维磷同素异形体光学性质的影响:蓝色和黑色单层的情况。我们阐明了最相关的光学跃迁、激子结合能谱以及实空间激子分布,特别关注吸收光谱对入射光偏振的依赖性。此外,基于我们的结果,我们使用了一组有效的类氢模型,其中包括电子 - 空穴库仑相互作用来估计激子结合能和半径。我们的结果表明多体方法与有效模型之间具有极好的一致性。

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