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Atomistic defect states as quantum emitters in monolayer MoS$_2$

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arxiv 1901.01042 v2 pith:CVRITVHG submitted 2019-01-04 cond-mat.mes-hall cond-mat.mtrl-sci

classification cond-mat.mes-hallcond-mat.mtrl-sci
keywords quantumdefectemissionstatessystemsdefectsdeterministicallyexotic
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abstract

Quantum light sources in solid-state systems are of major interest as a basic ingredient for integrated quantum device technologies. The ability to tailor quantum emission through deterministic defect engineering is of growing importance for realizing scalable quantum architectures. However, a major difficulty is that defects need to be positioned site-selectively within the solid. Here, we overcome this challenge by controllably irradiating single-layer MoS$_{2}$ using a sub-nm focused helium ion beam to deterministically create defects. Subsequent encapsulation of the ion bombarded MoS$_{2}$ flake with high-quality hBN reveals spectrally narrow emission lines that produce photons at optical wavelengths in an energy window of one to two hundred meV below the neutral 2D exciton of MoS$_{2}$. Based on ab-initio calculations we interpret these emission lines as stemming from the recombination of highly localized electron-hole complexes at defect states generated by the helium ion bombardment. Our approach to deterministically write optically active defect states in a single transition metal dichalcogenide layer provides a platform for realizing exotic many-body systems, including coupled single-photon sources and exotic Hubbard systems.

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  1. Optical fingerprint of bright and dark localized excitonic states in atomically thin 2D materials

    cond-mat.mes-hall 2019-08 conditional novelty 6.0 of 10

    In disordered WSe2, localized bright and momentum-dark excitons produce distinct photoluminescence peaks, with a temperature- and disorder-width-dependent crossover between localization-dominated and phonon-dominated spectra.

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