Interlayer Exciton-Phonon Bound State in Bi2Se3/monolayer WS2 van der Waals Heterostructures
Zachariah Hennighausen, Jisoo Moon, Kathleen M. McCreary, Connie H., Li, Olaf M.J. van `t Erve, and Berend T. Jonker

TL;DR
This study demonstrates the formation of interlayer exciton-phonon bound states in Bi2Se3/WS2 heterostructures, revealing new interlayer interactions that could enable advanced optoelectronic and quantum devices.
Contribution
It reports the first observation of interlayer exciton-phonon bound states in Bi2Se3/WS2 heterostructures, highlighting the role of surface phonons in interlayer coupling.
Findings
Observation of evenly spaced peaks in photoluminescence spectra
Identification of A1(3) surface phonon imprinting on excitonic emission
Enhanced surface phonon activity revealed by polarized Raman spectroscopy
Abstract
The ability to assemble layers of two-dimensional (2D) materials to form permutations of van der Waals heterostructures provides significant opportunities in materials design and synthesis. Interlayer interactions provide a path to new properties and functionality, and understanding such interactions is essential to that end. Here we report formation of interlayer exciton-phonon bound states in Bi2Se3/WS2 heterostructures, where the Bi2Se3 A1(3) surface phonon, a mode particularly susceptible to electron-phonon coupling, is imprinted onto the excitonic emission of the WS2. The exciton-phonon bound state (or exciton-phonon quasiparticle) presents itself as evenly separated peaks superposed on the WS2 excitonic photoluminescence spectrum, whose periodic spacing corresponds to the A1(3) surface phonon energy. Low-temperature polarized Raman spectroscopy of Bi2Se3 reveals intense surface…
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Taxonomy
Topics2D Materials and Applications · Topological Materials and Phenomena · Advanced Thermoelectric Materials and Devices
