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Research PaperResearchia:202610.09087

Theory of the CH$_\text{S}^-$ Defect in MoS$_2$ Confirming the Origin of the Quantum Emission

Chanaprom Cholsuk

Abstract

Establishing the microscopic origin of localized emission in two-dimensional materials through consistent agreement between experiment and theory remains challenging. Recent STM/STS-STML measurements assigned an emission near 1.8 eV in monolayer MoS$_2$/hBN(2L)/graphene to the negatively charged CH$_\mathrm{S}^{-}$ defect. However, a comprehensive theoretical description of this emitter is still lacking. Here, we develop such a description and systematically investigate the photophysical propert...

Submitted: October 9, 2026Subjects: Quantum Physics; Quantum Computing

Description / Details

Establishing the microscopic origin of localized emission in two-dimensional materials through consistent agreement between experiment and theory remains challenging. Recent STM/STS-STML measurements assigned an emission near 1.8 eV in monolayer MoS2_2/hBN(2L)/graphene to the negatively charged CHSβˆ’_\mathrm{S}^{-} defect. However, a comprehensive theoretical description of this emitter is still lacking. Here, we develop such a description and systematically investigate the photophysical properties of CHSβˆ’_\mathrm{S}^{-} in monolayer MoS2_2, two bilayer configurations, and a MoS2_2/hBN heterostructure. The defect retains a similar local geometry and favors a singlet ground state in all four environments, whereas its electronic transition, zero-phonon line, electron-phonon coupling, radiative lifetime, and transition-dipole orientation depend strongly on the surrounding layers. The isolated-monolayer model exhibits substantial structural reorganization and produces a broad, dominant phonon sideband that is inconsistent with experiment. Adding an adjacent layer, either MoS2_2 or hBN, substantially suppresses the phonon sideband, with only a minor dependence on the defect position in bilayer MoS2_2. In particular, the MoS2_2/hBN model yields a weak phonon sideband and closely reproduces the experimental photoluminescence lineshape. Our results thus provide the first theoretical agreement of CHSβˆ’_\mathrm{S}^{-} emission and further reveal the role of adjacent layers in determining the electronic, vibronic, and optical properties of the quantum emitters in two-dimensional materials.


Source: arXiv:2610.12283v1 - http://arxiv.org/abs/2610.12283v1 PDF: https://arxiv.org/pdf/2610.12283v1 Original Link: http://arxiv.org/abs/2610.12283v1

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Date:
Oct 9, 2026
Topic:
Quantum Computing
Area:
Quantum Physics
Comments:
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