论文标题

分层半导体光谱指南

Guide to optical spectroscopy of layered semiconductors

论文作者

Shree, Shivangi, Paradisanos, Ioannis, Marie, Xavier, Robert, Cedric, Urbaszek, Bernhard

论文摘要

在这项技术综述中,我们将分层材料的光谱介绍作为一种功能强大的非侵入性工具,以获取电子带结构和晶体质量的细节。光子学和光电子学中的潜在应用是基于我们对原子单层量表上的光 - 物质相互作用的理解。在这里,原子上薄的过渡金属二分法(例如MOS2和WSE2)是光谱可见区域中带有带隙的分层半导体的模型系统。它们可以组装以形成异质结构,并结合组成单层的独特特性。我们回顾了微功能发光光谱和光吸收实验的工作原理。我们讨论光谱中主要吸收和发射特征的物理起源以及如何调整它们。我们解释了在不同条件下进行实验的实用设置的关键,例如可变温度或施加的磁场,以及诸如检测点大小和激发激光波长等参数如何影响光谱。我们描述了直接样品环境(例如底物和封装层)对发射和吸收机制的重要影响。提供了探测层之间的耦合并分析自旋和valleytronics的载体极化动力学的光学技术的调查。

In this technical review we give an introduction to optical spectroscopy for layered materials as a powerful, non-invasive tool to access details of the electronic band structure and crystal quality. Potential applications in photonics and optoelectronics are based on our understanding of the light-matter interaction on an atomic monolayer scale. Here atomically thin transition metal dichalcogenides, such as MoS2 and WSe2, are model systems for layered semiconductors with a bandgap in the visible region of the optical spectrum. They can be assembled to form heterostructures and combine the unique properties of the constituent monolayers. We review the working principles of micro-photoluminescence spectroscopy and optical absorption experiments. We discuss the physical origin of the main absorption and emission features in the optical spectra and how they can be tuned. We explain key-aspects of practical set-ups for performing experiments in different conditions such as variable temperatures or in applied magnetic fields and how parameters such as detection spot size and excitation laser wavelength impact the optical spectra. We describe the important influence of the direct sample environment, such as substrates and encapsulation layers, on the emission and absorption mechanisms. A survey of optical techniques that probe the coupling between layers and analyse carrier polarisation dynamics for spin- and valleytronics is provided.

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