Strong spin-lattice interaction in layered antiferromagnetic CrCl3

Understanding the coupling between lattice vibrations and magnetic order is crucial for controlling properties of two-dimensional magnetic materials. Here, we investigate the vibrational properties of bulk and thick-flake CrCl 3 using polarization-resolved Raman spectroscopy, complemented by photoluminescence, photoluminescence excitation, and optical absorption measurements. Symmetry analysis, supported by first-principles phonon calculations, enables the unambiguous assignment of all eight Raman-active modes, four A g and four E g , previously predicted only theoretically. Excitation-energy-dependent measurements reveal that the strong enhancement of selected phonon modes originates primarily from interference effects rather than resonant Raman scattering. Temperature-dependent Raman spectroscopy further reveals pronounced signatures of spin-phonon coupling across the transition from a fully antiferromagnetic phase, through an intermediate regime with local, domain-like ferromagnetic order, to the paramagnetic phase, accompanied by a clear rhombohedral-to-monoclinic structural transition. Together, these results demonstrate how lattice, electronic, and magnetic degrees of freedom collectively govern the Raman response of CrCl 3 .

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Publication Details

Journal
Communications Physics
Published
2026-10-01
DOI
https://doi.org/10.1038/s42005-026-02870-7
Primary Topic
2D Materials and Applications
Type
article
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article

Strong spin-lattice interaction in layered antiferromagnetic CrCl3

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Strong spin-lattice interaction in layered antiferromagnetic CrCl3

A. Wysmołek, A. Babiński, Igor Antoniazzi, Przemysław Oliwa, Tomasz Woźniak, Łucja Kipczak, Jakub Iwański, M. Kalaiarasan, Maciej Koperski, Maciej R. Molas, Jan Pawłowski, Kacper Walczyk, Chinmay K. Mohanty, Zdeněk Sofer
article en

Abstract

Understanding the coupling between lattice vibrations and magnetic order is crucial for controlling properties of two-dimensional magnetic materials. Here, we investigate the vibrational properties of bulk and thick-flake CrCl 3 using polarization-resolved Raman spectroscopy, complemented by photoluminescence, photoluminescence excitation, and optical absorption measurements. Symmetry analysis, supported by first-principles phonon calculations, enables the unambiguous assignment of all eight Raman-active modes, four A g and four E g , previously predicted only theoretically. Excitation-energy-dependent measurements reveal that the strong enhancement of selected phonon modes originates primarily from interference effects rather than resonant Raman scattering. Temperature-dependent Raman spectroscopy further reveals pronounced signatures of spin-phonon coupling across the transition from a fully antiferromagnetic phase, through an intermediate regime with local, domain-like ferromagnetic order, to the paramagnetic phase, accompanied by a clear rhombohedral-to-monoclinic structural transition. Together, these results demonstrate how lattice, electronic, and magnetic degrees of freedom collectively govern the Raman response of CrCl 3 .

Communications Physics
Wrocław University of Science and Technology (PL), National University of Singapore (SG), Institute for Functional Intelligent Materials (SG), University of Warsaw (PL), University of Chemistry and Technology, Prague (CZ)
Peace, Justice and strong institutions
Openalex Percentile: Top 26%
2D Materials and Applications
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