Phonon assisted absorption in Transition Metal Dichalcogenide heterostructures
Yifan Liu, Robert Dawson, Nathaniel Gabor, Vivek Aji

TL;DR
This paper develops a theoretical model for phonon-assisted optical absorption in transition metal dichalcogenide heterostructures, revealing the importance of interband phonon coupling in explaining experimental vibronic sidebands.
Contribution
It introduces a nonperturbative polaron-based framework that accounts for both intra- and interband electron-phonon interactions at arbitrary temperatures.
Findings
Periodic sidebands arise from strong interlayer exciton-phonon coupling.
Interband phonon-assisted transitions are necessary to explain experimental data.
The model enables estimation of vibronic coupling strengths from spectroscopy.
Abstract
The coupling of atomic vibrations to electronic excitations - traditionally understood to be a source of energy loss in semiconductors - has recently been explored in photosynthetic light harvesting as a means to circumvent dissipation by harnessing quantum vibronic coherence. Motivated by recent photocurrent measurements of vibronic sidebands in WSe/MoSe optoelectronic devices, we present a nonperturbative theoretical framework for phonon-assisted absorption in van der Waals heterostructures. Using a polaron transformation, a closed-form expression for the optical absorption spectrum at arbitrary temperatures is presented. Our model includes both intraband and interband electron--phonon coupling. Detailed analysis shows that the observed periodic sidebands originate from the strong coupling between interlayer excitons and nearly dispersionless optical phonon modes. Comparing…
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Taxonomy
Topics2D Materials and Applications · Chemical and Physical Properties of Materials · Strong Light-Matter Interactions
