Confinement of excited states in two-dimensional, in-plane, quantum heterostructures
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Published:2024-07-28
Issue:1
Volume:15
Page:
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ISSN:2041-1723
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Container-title:Nature Communications
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language:en
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Short-container-title:Nat Commun
Author:
Kim GwangwooORCID, Huet BenjaminORCID, Stevens Christopher E.ORCID, Jo Kiyoung, Tsai Jeng-Yuan, Bachu Saiphaneendra, Leger Meghan, Song SeungukORCID, Rahaman MahfujurORCID, Ma Kyung Yeol, Glavin Nicholas R., Shin Hyeon SukORCID, Alem NasimORCID, Yan QiminORCID, Hendrickson Joshua R.ORCID, Redwing Joan M.ORCID, Jariwala DeepORCID
Abstract
AbstractTwo-dimensional (2D) semiconductors are promising candidates for optoelectronic application and quantum information processes due to their inherent out-of-plane 2D confinement. In addition, they offer the possibility of achieving low-dimensional in-plane exciton confinement, similar to zero-dimensional quantum dots, with intriguing optical and electronic properties via strain or composition engineering. However, realizing such laterally confined 2D monolayers and systematically controlling size-dependent optical properties remain significant challenges. Here, we report the observation of lateral confinement of excitons in epitaxially grown in-plane MoSe2 quantum dots (~15-60 nm wide) inside a continuous matrix of WSe2 monolayer film via a sequential epitaxial growth process. Various optical spectroscopy techniques reveal the size-dependent exciton confinement in the MoSe2 monolayer quantum dots with exciton blue shift (12-40 meV) at a low temperature as compared to continuous monolayer MoSe2. Finally, single-photon emission (g2(0) ~ 0.4) was also observed from the smallest dots at 1.6 K. Our study opens the door to compositionally engineered, tunable, in-plane quantum light sources in 2D semiconductors.
Funder
United States Department of Defense | United States Air Force | AFMC | Air Force Office of Scientific Research
Publisher
Springer Science and Business Media LLC
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