Observation of Anisotropic Dispersive Dark-Exciton Dynamics in CrSBr
ORAL
Abstract
Many-body excitons in CrSBr are attracting intense interest in view of their highly anisotropic magnetooptical coupling and their potential for novel optical interfaces within spintronic and magnonic devices. Characterizing the orbital character and propagation of these electronic excitations is crucial for understanding and controlling their behavior; however, this information is challenging to access. High resolution resonant inelastic x-ray scattering is a momentum-resolved technique that can address these crucial questions. We present measurements collected at the Cr L3-edge which show a rich spectrum of excitations with a variety of spin-orbital characters. While most of these excitations appear to be localized, the dispersion of the lowest energy dark exciton indicates that it is able to propagate along both the a and b directions within the planes of the crystal. This two-dimensional character is surprising as it contrasts with electrical conductivity and the behavior of the bright exciton, both of which are strongly one dimensional. The discovery of this propagating dark exciton highlights an unusual coexistence of one- and two-dimensional electronic behaviors in CrSBr.
*Work at Brookhaven and Harvard is supported by the Office of Basic Energy Sciences, Materials Sciences and Engineering Division, U.S. Department of Energy (DOE) under Contract No. DESC0012704. Work at the University of Tennessee (RIXS calculations and interpretation by model Hamiltonian calculations) was supported by the U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences, under Award No. DE-SC0022311.
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Publication:Observation of Anisotropic Dispersive Dark-Exciton Dynamics in CrSBr, J. Sears, B. Zager, W. He, C. A. Occhialini, Y. Shen, M. Lajer, J. W. Villanova, T. Berlijn, F. Yakhou-Harris, N. B. Brookes, D. G. Chica, X. Roy, E. Baldini, J. Pelliciari, V. Bisogni, S. Johnston, M. Mitrano, and M. P. M. Dean, Phys. Rev. Lett. 135, 146503 (2025)