Interactions between Fermi polarons in monolayer WS2

Author:

Muir Jack B.ORCID,Levinsen JesperORCID,Earl Stuart K.ORCID,Conway Mitchell A.,Cole Jared H.ORCID,Wurdack MatthiasORCID,Mishra RishabhORCID,Ing David J.,Estrecho EliezerORCID,Lu YueruiORCID,Efimkin Dmitry K.ORCID,Tollerud Jonathan O.,Ostrovskaya Elena A.ORCID,Parish Meera M.ORCID,Davis Jeffrey A.ORCID

Abstract

AbstractInteractions between quasiparticles are of fundamental importance and ultimately determine the macroscopic properties of quantum matter. A famous example is the phenomenon of superconductivity, which arises from attractive electron-electron interactions that are mediated by phonons or even other more exotic fluctuations in the material. Here we introduce mobile exciton impurities into a two-dimensional electron gas and investigate the interactions between the resulting Fermi polaron quasiparticles. We employ multi-dimensional coherent spectroscopy on monolayer WS2, which provides an ideal platform for determining the nature of polaron-polaron interactions due to the underlying trion fine structure and the valley specific optical selection rules. At low electron doping densities, we find that the dominant interactions are between polaron states that are dressed by the same Fermi sea. In the absence of bound polaron pairs (bipolarons), we show using a minimal microscopic model that these interactions originate from a phase-space filling effect, where excitons compete for the same electrons. We furthermore reveal the existence of a bipolaron bound state with remarkably large binding energy, involving excitons in different valleys cooperatively bound to the same electron. Our work lays the foundation for probing and understanding strong electron correlation effects in two-dimensional layered structures such as moiré superlattices.

Funder

Department of Education and Training | Australian Research Council

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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