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Research Article

Defects inducing anomalous exciton kinetics in monolayer WS2

Zhe Li1,§Yan Zeng1,§Zhenwei Ou1Tianzhu Zhang1Rongguang Du1Ke Wu1Quanbing Guo2Wei Jiang1Yuhao Xu1Tao Li3Tai Min3Ti Wang1( )Hongxing Xu1( )
School of Physics and Technology, Center for Nanoscience and Nanotechnology, and Key Laboratory of Artificial Micro- and Nano- structures of Ministry of Education Wuhan UniversityWuhan 430072 China
Institute of Microscale Optoelectronics Shenzhen UniversityShenzhen 518060 China
Center for Spintronics and Quantum System, State Key Laboratory for Mechanical Behavior of Materials, School of Materials Science and Engineering Xi'an Jiaotong UniversityXi'an 710049 China

§ Zhe Li and Yan Zeng contributed equally to this work.

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Abstract

Two-dimensional (2D) transition metal dichalcogenide (TMD) has emerged as an effective optoelectronics material due to its novel optical properties. Understanding the role of defects in exciton kinetics is crucial for achieving high-efficiency TMD devices. Here, we observe defects induced anomalous power dependence exciton dynamics and spatial distribution in hexagonal heterogeneous WS2. With transient absorption microscopy study, we illustrate that these phenomena originate from the competition between radiative and defect-related non-radiative decays. To understand the physics behind this, a decay model is introduced with two defect-related channels, which demonstrates that more excitons decay through non-radiative channels in the dark region than the bright region. Our work reveals the mechanisms of anomalous exciton kinetics by defects and is instrumental for understanding and exploiting excitonic states in emerging 2D semiconductors.

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Nano Research
Pages 1616-1622

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Cite this article:
Li Z, Zeng Y, Ou Z, et al. Defects inducing anomalous exciton kinetics in monolayer WS2. Nano Research, 2022, 15(2): 1616-1622. https://doi.org/10.1007/s12274-021-3710-7
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Received: 02 May 2021
Revised: 11 June 2021
Accepted: 22 June 2021
Published: 05 August 2021
© Tsinghua University Press and Springer-Verlag GmbH Germany, part of Springer Nature 2021