Rydberg series of dark excitons and the conduction band spin-orbit splitting in monolayer WSe2

Author:

Kapuściński PiotrORCID,Delhomme Alex,Vaclavkova Diana,Slobodeniuk Artur O.,Grzeszczyk MagdalenaORCID,Bartos Miroslav,Watanabe KenjiORCID,Taniguchi TakashiORCID,Faugeras ClémentORCID,Potemski MarekORCID

Abstract

AbstractStrong Coulomb correlations together with multi-valley electronic bands in the presence of spin-orbit interaction are at the heart of studies of the rich physics of excitons in monolayers of transition metal dichalcogenides (TMD). Those archetypes of two-dimensional systems promise a design of new optoelectronic devices. In intrinsic TMD monolayers the basic, intravalley excitons, are formed by a hole from the top of the valence band and an electron either from the lower or upper spin-orbit-split conduction band subbands: one of these excitons is optically active, the second one is dark, although possibly observed under special conditions. Here we demonstrate the s-series of Rydberg dark exciton states in tungsten diselenide monolayer, which appears in addition to a conventional bright exciton series in photoluminescence spectra measured in high in-plane magnetic fields. The comparison of energy ladders of bright and dark Rydberg excitons is shown to be a method to experimentally evaluate one of the missing band parameters in TMD monolayers: the amplitude of the spin-orbit splitting of the conduction band.

Funder

Fundacja na rzecz Nauki Polskiej

EC | Horizon 2020 Framework Programme

Ministerstvo Školství, Mládeže a Tělovýchovy

MEXT | Japan Science and Technology Agency

MEXT | Japan Society for the Promotion of Science

MEXT | JST | Core Research for Evolutional Science and Technology

Ministerstwo Nauki i Szkolnictwa Wyższego

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy

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