English

Broken inversion symmetry in the charge density wave phase in EuAl$_4$

Strongly Correlated Electrons 2025-10-13 v2 Other Condensed Matter

Abstract

EuAl4_4 exhibits a complex phase diagram, including the development of a charge density wave (CDW) below TCDW=145T_{CDW} = 145 K. Below TN=15.4T_{N}=15.4 K, a series of antiferromagnetically (AFM) ordered phases appear, while non-trivial topological phases, like skyrmion lattices, are stabilized under an applied magnetic field. The symmetries of the variously ordered phases are a major issue concerning the understanding of the stabilization of the ordered phases as well as concerning the interplay between the various types of order. EuAl4_4 at room temperature has tetragonal symmetry with space group I4/mmmI4/mmm. The CDW phase has an incommensurately modulated crystal structure described by the modulation wave vector q0.17c\mathbf{q} \approx 0.17\mathbf{c}^{*}. On the basis of various experiments, including elastic and inelastic x-ray scattering, and second-harmonic generation, it has been proposed that the symmetry of the CDW phase of EuAl4_4 could be centrosymmetric orthorhombic, non-centrosymmetric orthorhombic or non-centrosymmetric tetragonal. Here, we report temperature-dependent, single-crystal x-ray diffraction experiments that show that the CDW is a transverse CDW with phason disorder, and with non-centrosymmetric symmetry according to the orthorhombic superspace group F222(00σ)00sF222(0\,0\,\sigma)00s.Essential for this finding is the availability of a sufficient number of second-order (2q2\mathbf{q}) satellite reflections in the x-ray diffraction data set. The broken inversion symmetry implies that skyrmions might form due to Dzyaloshinskii-Moriya (DM) interactions, instead of a more exotic mechanism as it is required for centrosymmetric structures.

Keywords

Cite

@article{arxiv.2506.01633,
  title  = {Broken inversion symmetry in the charge density wave phase in EuAl$_4$},
  author = {Surya Rohith Kotla and Leila Noohinejad and Preeti Pokhriyal and Martin Tolkiehn and Harshit Agarwal and Sitaram Ramakrishnan and Sander van Smaalen},
  journal= {arXiv preprint arXiv:2506.01633},
  year   = {2025}
}

Comments

10 pages, 7 figures

R2 v1 2026-07-01T02:54:23.088Z