Characterization of quantum dot-like emitters in programmable arrays of nanowrinkles of 1L-WSe2

Author:

Strasbourg Matthew C.12ORCID,Yanev Emanuil S.2ORCID,Darlington Thomas P.2ORCID,Faagau Kavika1ORCID,Holtzman Luke N.3ORCID,Barmak Katayun3ORCID,Hone James C.2,Schuck P. James2ORCID,Borys Nicholas J.1ORCID

Affiliation:

1. Department of Physics, Montana State University 1 , Bozeman, Montana 59717, USA

2. Department of Mechanical Engineering, Columbia University 2 , New York, New York 10027, USA

3. Department of Applied Physics and Applied Mathematics, Columbia University 3 , New York, New York 10027, USA

Abstract

When combined with nanostructured substrates, two-dimensional semiconductors can be engineered with strain to tailor light–matter interactions on the nanoscale. Recently, room-temperature nanoscale exciton localization with controllable wrinkling in 1L-WSe2 was achieved using arrays of gold nanocones. Here, the characterization of quantum dot-like states and single-photon emitters in the 1L-WSe2/nanocone system is reported. The nanocones induce a wide range of strains, and as a result, a diverse ensemble of narrowband, potential single-photon emitters is observed. The distribution of emitter energies reveals that most reside in two spectrally isolated bands, leaving a less populated intermediate band that is spectrally isolated from the ensembles. The spectral isolation is advantageous for high-purity quantum light emitters, and anti-bunched emission from one of these states is confirmed up to 25 K. Although the spatial distribution of strain is expected to influence the orientation of the transition dipoles of the emitters, multimodal emission polarization anisotropy and atomic force microscopy reveal that the macroscopic orientation of the wrinkles is not a good predictor of dipole orientation. Finally, the emission is found to change with thermal cycling from 4 to 290 K and back to 4 K, highlighting the need to control factors such as temperature-induced strain to enhance the robustness of this quantum emitter platform. The initial characterization here shows that controlled nanowrinkles of 1L-WSe2 generate quantum light in addition to uncovering potential challenges that need to be addressed for their adoption into quantum photonic technologies.

Funder

National Science Foundation

U.S. Department of Energy

Publisher

AIP Publishing

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