Microscopic many-body theory of two-dimensional coherent spectroscopy of excitons and trions in atomically thin transition metal dichalcogenides
Hui Hu, Jia Wang, and Xia-Ji Liu

TL;DR
This paper develops a microscopic many-body theory for 2D coherent spectroscopy of excitons and trions in monolayer MoSe2, accurately reproducing experimental spectra and clarifying the underlying microscopic principles.
Contribution
It introduces a simplified relation for the 2DCS spectrum based on a modified polaron Green function, explaining experimental signals without phenomenological parameters.
Findings
Qualitative agreement with experimental spectra
Reproduction of quantum beats between off-diagonal peaks
Identification of discrepancies due to finite exciton density
Abstract
We present a microscopic many-body theory of the recently measured two-dimensional coherent spectroscopy (2DCS) of excitons and trions in monolayer MoSe materials {[}K. Hao \textit{et al.}, Nano Lett. \textbf{16}, 5109 (2016){]}, where excitons and trions can be well interpreted as repulsive and attractive polarons, respectively, in the dilute limit of exciton density. We derive a simple relation for the 2DCS spectrum in terms of a modified, mixing time-dependent polaron Green function, which is valid in the single exciton limit. Our simulated spectra are in excellent qualitative agreement with experiments without introducing any phenomenological parameters such as decoherence rates. In particular, quantum beats between the off-diagonal crosspeaks in the experimental 2DCS spectra are well reproduced. Our work, therefore, clarifies the microscopic principle that underlies the…
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Taxonomy
TopicsSpectroscopy and Quantum Chemical Studies · Spectroscopy Techniques in Biomedical and Chemical Research · Advanced Thermodynamics and Statistical Mechanics
