Dissociation of two-dimensional excitons in monolayer WSe2

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作者
Mathieu Massicotte
Fabien Vialla
Peter Schmidt
Mark B. Lundeberg
Simone Latini
Sten Haastrup
Mark Danovich
Diana Davydovskaya
Kenji Watanabe
Takashi Taniguchi
Vladimir I. Fal’ko
Kristian S. Thygesen
Thomas G. Pedersen
Frank H. L. Koppens
机构
[1] The Barcelona Institute of Science and Technology,ICFO–Institut de Ciències Fotòniques
[2] Technical University of Denmark,CAMD, Department of Physics
[3] Technical University of Denmark,Center for Nanostructured Graphene (CNG)
[4] University of Manchester,National Graphene Institute
[5] National Institute for Materials Science,Department of Physics and Nanotechnology
[6] Aalborg University,undefined
[7] Center for Nanostructured Graphene (CNG),undefined
[8] ICREA – Institució Catalana de Recerça i Estudis Avancats,undefined
来源
Nature Communications | / 9卷
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摘要
Two-dimensional (2D) semiconducting materials are promising building blocks for optoelectronic applications, many of which require efficient dissociation of excitons into free electrons and holes. However, the strongly bound excitons arising from the enhanced Coulomb interaction in these monolayers suppresses the creation of free carriers. Here, we identify the main exciton dissociation mechanism through time and spectrally resolved photocurrent measurements in a monolayer WSe2p–n junction. We find that under static in-plane electric field, excitons dissociate at a rate corresponding to the one predicted for tunnel ionization of 2D Wannier–Mott excitons. This study is essential for understanding the photoresponse of 2D semiconductors and offers design rules for the realization of efficient photodetectors, valley dependent optoelectronics, and novel quantum coherent phases.
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