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arXiv · 2609.14792

The Propagating Nature of Single- and Multimagnons in LaCrO$_3$

Abstract

The dispersion of an excitation is commonly used to infer its microscopic character: dispersive modes are associated with propagation, whereas nondispersive features are often interpreted as localized. This distinction becomes less straightforward for composite excitations, whose spectral maxima can remain nearly dispersionless even when they are built from propagating quasiparticles. Here we use momentum- and temperature-dependent resonant inelastic X-ray scattering (RIXS) to reveal the origin of multimagnon excitations in antiferromagnetic LaCrO$_3$. Whereas the single magnon disperses strongly, the two- and three-magnon features remain nearly flat. On approaching the Neel temperature, thermal population of the magnon band produces an anti-Stokes branch and opens an additional three-magnon channel involving the creation of two magnons and annihilation of one. Its energy and momentum dependence are reproduced by a thermally weighted multimagnon joint density of states calculations. These results establish thermal population as a means of exposing the propagating constituents hidden within nondispersive composite excitations, and position RIXS as a probe of multimagnon dynamics and, ultimately, magnon-magnon interactions.

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BibTeXRIS

Masoud Lazemi, Fabian J. Mohammad, Ellen M. Kiens, Yorick A. Birkhölzer, Paras Mehta, Emma van der Minne, Stefano Agrestini, Frank M. F. de Groot, Hebatalla Elnaggar. 2026-09-13. The Propagating Nature of Single- and Multimagnons in LaCrO$_3$. https://arxiv.org/abs/2609.14792

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