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Locally defined quantum emission from epitaxial few-layer tungsten diselenide.

Authors :
Wu, Wei
Dass, Chandriker K.
Hendrickson, Joshua R.
Montaño, Raul D.
Fischer, Robert E.
Zhang, Xiaotian
Choudhury, Tanushree H.
Redwing, Joan M.
Wang, Yongqiang
Pettes, Michael T.
Source :
Applied Physics Letters. 5/27/2019, Vol. 114 Issue 21, pN.PAG-N.PAG. 5p. 4 Graphs.
Publication Year :
2019

Abstract

Recently, single photons have been observed emanating from point defects in two-dimensional (2D) materials including WSe2, WS2, hexagonal-BN, and GaSe, with their energy residing in the direct electronic bandgap. Here, we report single photon emission from a nominal weakly emitting indirect bandgap 2D material through deterministic strain induced localization. A method is demonstrated to create highly spatially localized and spectrally well-separated defect emission sites in the 750–800 nm regime in a continuous epitaxial film of few-layer WSe2 synthesized by a multistep diffusion-mediated gas source chemical vapor deposition technique. To separate the effects of mechanical strain from the substrate or dielectric-environment induced changes in the electronic structure, we created arrays of large isotropically etched ultrasharp silicon dioxide tips with spatial dimensions on the order of 10 μm. We use bending based on the small radius of these tips—on the order of 4 nm—to impart electronic localization effects through morphology alone, as the WSe2 film experiences a uniform SiO2 dielectric environment in the device geometry chosen for this investigation. When the continuous WSe2 film was transferred onto an array of SiO2 tips, an ∼87% yield of localized emission sites on the tips was observed. The outcomes of this report provide fundamental guidelines for the integration of beyond-lab-scale quantum materials into photonic device architectures for all-optical quantum information applications. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00036951
Volume :
114
Issue :
21
Database :
Academic Search Index
Journal :
Applied Physics Letters
Publication Type :
Academic Journal
Accession number :
136772027
Full Text :
https://doi.org/10.1063/1.5091779