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Excited states in hydrogenated single-layer MoS2.

Naseem Ud DinVolodymyr TurkowskiTalat Shanaz Rahman
Published in: Journal of physics. Condensed matter : an Institute of Physics journal (2020)
Our calculations of the excitation spectrum of single-layer MoS2 at several hydrogen coverages, using a Density-Matrix based Time-Dependent Density-Functional Theory (TDDFT) show that the fully hydrogenated system is metallic, while at lower coverages the spectrum consists of spin-polarized partially filled localized mid-gap states. The calculated absorption spectrum of the system reveals standard excitonic peaks corresponding to the bound valence-band hole and conduction-band electron, as well as excitonic peaks that involve the mid-gap charges. Binding energies of the excitons of the hydrogenated system are found to be relatively large (few tens of meV), making their experimental detection facile and suggesting hydrogenation as a knob for tuning the optical properties of single-layer MoS2. Importantly, we find hydrogenation to suppress visible light photoluminescence, in agreement with experimental observations. In contrast, both Li and Na atoms transform the system into an n-doped non-magnetic semiconductor that does not allow excitonic states.
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