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原子级薄半导体中的暗激子反漏斗效应

Dark exciton anti-funneling in atomically thin semiconductors.

作者信息

Rosati Roberto, Schmidt Robert, Brem Samuel, Perea-Causín Raül, Niehues Iris, Kern Johannes, Preuß Johann A, Schneider Robert, Michaelis de Vasconcellos Steffen, Bratschitsch Rudolf, Malic Ermin

机构信息

Department of Physics, Philipps-Universität Marburg, 35032, Marburg, Germany.

Institute of Physics and Center for Nanotechnology, University of Münster, 48149, Münster, Germany.

出版信息

Nat Commun. 2021 Dec 10;12(1):7221. doi: 10.1038/s41467-021-27425-y.

Abstract

Transport of charge carriers is at the heart of current nanoelectronics. In conventional materials, electronic transport can be controlled by applying electric fields. Atomically thin semiconductors, however, are governed by excitons, which are neutral electron-hole pairs and as such cannot be controlled by electrical fields. Recently, strain engineering has been introduced to manipulate exciton propagation. Strain-induced energy gradients give rise to exciton funneling up to a micrometer range. Here, we combine spatiotemporal photoluminescence measurements with microscopic theory to track the way of excitons in time, space and energy. We find that excitons surprisingly move away from high-strain regions. This anti-funneling behavior can be ascribed to dark excitons which possess an opposite strain-induced energy variation compared to bright excitons. Our findings open new possibilities to control transport in exciton-dominated materials. Overall, our work represents a major advance in understanding exciton transport that is crucial for technological applications of atomically thin materials.

摘要

电荷载流子的输运是当前纳米电子学的核心。在传统材料中,电子输运可以通过施加电场来控制。然而,原子级薄的半导体受激子支配,激子是中性的电子 - 空穴对,因此不能由电场控制。最近,应变工程已被引入来操纵激子传播。应变诱导的能量梯度会导致激子在高达微米范围内的漏斗效应。在这里,我们将时空光致发光测量与微观理论相结合,以跟踪激子在时间、空间和能量中的运动方式。我们发现激子出人意料地从高应变区域移开。这种反漏斗行为可归因于暗激子,与亮激子相比,暗激子具有相反的应变诱导能量变化。我们的发现为控制激子主导材料中的输运开辟了新的可能性。总体而言,我们的工作代表了在理解激子输运方面的重大进展,这对于原子级薄材料的技术应用至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cd36/8664915/2f998615b74b/41467_2021_27425_Fig1_HTML.jpg

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