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Exciton-phonon coupling strength in single-layer MoSe2 at room temperature.


ABSTRACT: Single-layer transition metal dichalcogenides are at the center of an ever increasing research effort both in terms of fundamental physics and applications. Exciton-phonon coupling plays a key role in determining the (opto)electronic properties of these materials. However, the exciton-phonon coupling strength has not been measured at room temperature. Here, we use two-dimensional micro-spectroscopy to determine exciton-phonon coupling of single-layer MoSe2. We detect beating signals as a function of waiting time induced by the coupling between A excitons and A'1 optical phonons. Analysis of beating maps combined with simulations provides the exciton-phonon coupling. We get a Huang-Rhys factor ~1, larger than in most other inorganic semiconductor nanostructures. Our technique offers a unique tool to measure exciton-phonon coupling also in other heterogeneous semiconducting systems, with a spatial resolution ~260?nm, and provides design-relevant parameters for the development of optoelectronic devices.

SUBMITTER: Li D 

PROVIDER: S-EPMC7878916 | biostudies-literature | 2021 Feb

REPOSITORIES: biostudies-literature

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Exciton-phonon coupling strength in single-layer MoSe<sub>2</sub> at room temperature.

Li Donghai D   Trovatello Chiara C   Dal Conte Stefano S   Nuß Matthias M   Soavi Giancarlo G   Wang Gang G   Ferrari Andrea C AC   Cerullo Giulio G   Brixner Tobias T  

Nature communications 20210211 1


Single-layer transition metal dichalcogenides are at the center of an ever increasing research effort both in terms of fundamental physics and applications. Exciton-phonon coupling plays a key role in determining the (opto)electronic properties of these materials. However, the exciton-phonon coupling strength has not been measured at room temperature. Here, we use two-dimensional micro-spectroscopy to determine exciton-phonon coupling of single-layer MoSe<sub>2</sub>. We detect beating signals a  ...[more]

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