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    Coherent Coulomb Intra- and Intervalley Many-Body Effects in Single-Layer Transition Metal Dichalcogenides

    Thomas Deckert1, Henry Mittenzwey2,*, Oleg Dogadov3,†, Micol Bertolotti3, Giulio Cerullo3,4, Daniele Brida1,‡, Andreas Knorr2,§, and Stefano Dal Conte3,∥

    • 1Department of Physics and Materials Science, University of Luxembourg, 162a avenue de la Faïencerie, L-1511 Luxembourg, Luxembourg
    • 2Nichtlineare Optik und Quantenelektronik, Institut für Physik und Astronomie (IFPA), Fachgruppe Theoretische Physik, Technische Universität Berlin, D-10623 Berlin, Germany
    • 3Department of Physics, Politecnico di Milano, Piazza Leonardo da Vinci 32, Milan 20133, Italy
    • 4CNR-IFN, Piazza Leonardo da Vinci 32, Milan 20133, Italy

    • *Contact author: h.mittenzwey@tu-berlin.de
    • †Contact author: oleg.dogadov@polimi.it
    • ‡Contact author: daniele.brida@uni.lu
    • §Contact author: andreas.knorr@tu-berlin.de
    • ∥Contact author: stefano.dalconte@polimi.it

    Phys. Rev. Lett. 135, 066902 – Published 8 August, 2025

    DOI: https://doi.org/10.1103/j5cv-rffq

    Abstract

    The reduced Coulomb screening in single-layer (1L) transition metal dichalcogenides (TMDs) offers an ideal setting to explore excitonic many-body correlations. The interactions between excitons result in intra- and intervalley biexcitonic multiparticle states, whose contributions to the nonlinear optical response have remained elusive so far. Here, by using helicity-resolved transient absorption spectroscopy with sub-10 fs temporal resolution combined with a microscopic theory based on the excitonic Bloch equations we are able to unambiguously disentangle the contribution of two particle exciton and four particle biexciton correlations to the coherent optical response of 1L−WSe2 semiconductor. Upon resonant excitation of valley-polarized A exciton population we observe competing excitation-induced energy shift of the A exciton transition along with a coherent gain in the pumped valley and an instantaneous formation of an additional absorption peak in the unpumped valley, which we attribute to the effect of bound intervalley biexcitons. An excellent agreement between experimental results and calculations allows us to deepen understanding of many-body effects in 1L-TMDs, which is crucial for the development of excitonic and valleytronics devices.

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