The Role of Defect Geometry in Localized Emission from Monolayer Tungsten Dichalcogenides
S Carin Gavin1,2,3,4, Moumita Kar5, Jianguo Wen6
1Department of Physics and Astronomy, Northwestern University, Evanston, Illinois 60208, United States.
Abstract:
In two-dimensional transition metal dichalcogenides such as tungsten diselenide (WSe2), single photon emission has been broadly attributed to exciton localization from atomic point defects, yet the precise microscopic origins are unclear. This work introduces an empirically grounded computational framework that explains the origins of facile single photon emission in WSe2. High-resolution microscopy identifies native defect geometries in monolayer WSe2 lattices from which the model is built. The qualitative effects of chalcogen type, defect geometry, and mechanical strain on the electronic structure are individually assessed using density functional theory, and a specific divacancy configuration emerges as the candidate for localized single-electron transitions that match observed spectral energies. Spectroscopy and photon correlation measurements further validate this model, establishing a self-consistent link between defect geometry, electronic structure, and quantum emission.
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