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Photoluminescence imaging of single photon emitters within nanoscale strain profiles in monolayer WSe2.


ABSTRACT: Local deformation of atomically thin van der Waals materials provides a powerful approach to create site-controlled chip-compatible single-photon emitters (SPEs). However, the microscopic mechanisms underlying the formation of such strain-induced SPEs are still not fully clear, which hinders further efforts in their deterministic integration with nanophotonic structures for developing practical on-chip sources of quantum light. Here we investigate SPEs with single-photon purity up to 98% created in monolayer WSe2 via nanoindentation. Using photoluminescence imaging in combination with atomic force microscopy, we locate single-photon emitting sites on a deep sub-wavelength spatial scale and reconstruct the details of the surrounding local strain potential. The obtained results suggest that the origin of the observed single-photon emission is likely related to strain-induced spectral shift of dark excitonic states and their hybridization with localized states of individual defects.

SUBMITTER: Abramov AN 

PROVIDER: S-EPMC10504242 | biostudies-literature | 2023 Sep

REPOSITORIES: biostudies-literature

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Photoluminescence imaging of single photon emitters within nanoscale strain profiles in monolayer WSe<sub>2</sub>.

Abramov Artem N AN   Chestnov Igor Y IY   Alimova Ekaterina S ES   Ivanova Tatiana T   Mukhin Ivan S IS   Krizhanovskii Dmitry N DN   Shelykh Ivan A IA   Iorsh Ivan V IV   Kravtsov Vasily V  

Nature communications 20230915 1


Local deformation of atomically thin van der Waals materials provides a powerful approach to create site-controlled chip-compatible single-photon emitters (SPEs). However, the microscopic mechanisms underlying the formation of such strain-induced SPEs are still not fully clear, which hinders further efforts in their deterministic integration with nanophotonic structures for developing practical on-chip sources of quantum light. Here we investigate SPEs with single-photon purity up to 98% created  ...[more]

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