论文标题

激子光学元件,动力学和原子较薄的半导体

Exciton optics, dynamics and transport in atomically thin semiconductors

论文作者

Perea-Causin, Raul, Erkensten, Daniel, Fitzgerald, Jamie M., Thompson, Joshua J. P., Rosati, Roberto, Brem, Samuel, Malic, Ermin

论文摘要

原子上薄的半导体,例如过渡金属二甲硅烷(TMD)单层,表现出非常强大的库仑相互作用,从而产生了丰富的激子景观。这使得这些材料具有高效且可调的光电设备的高度吸引力。在本文中,我们回顾了对激子光学,动态和运输的了解的最新进展,这些进展至关重要地控制了基于TMD的设备的操作。我们强调了HBN封装的影响,它在光谱中揭示了许多许多粒子状态,并且我们概述了激子 - 抛物性领域中最新颖的突破。此外,我们强调了最近时间分辨的ARPES研究中TMD单层和异质结构中对激子形成和热化的直接观察。我们还显示了激子密度,应变和介电环境对激子扩散和漏斗的影响。最后,我们在不久的将来提出了相关的研究方向。

Atomically thin semiconductors such as transition metal dichalcogenide (TMD) monolayers exhibit a very strong Coulomb interaction, giving rise to a rich exciton landscape. This makes these materials highly attractive for efficient and tunable optoelectronic devices. In this article, we review the recent progress in the understanding of exciton optics, dynamics and transport, which crucially govern the operation of TMD-based devices. We highlight the impact of hBN-encapsulation, which reveals a plethora of many-particle states in optical spectra, and we outline the most novel breakthroughs in the field of exciton-polaritonics. Moreover, we underline the direct observation of exciton formation and thermalization in TMD monolayers and heterostructures in recent time-resolved ARPES studies. We also show the impact of exciton density, strain and dielectric environment on exciton diffusion and funneling. Finally, we put forward relevant research directions in the field of atomically thin semiconductors for the near future.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源