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La$_2$O$_3$Mn$_2$Se$_2$: a correlated insulating layered d-wave altermagnet

Materials Science 2024-10-21 v1

Abstract

Altermagnets represent a new class of magnetic phases without net magnetization that are invariant under a combination of rotation and time reversal. Unlike conventional collinear antiferromagnets (AFM), altermagnets could lead to new correlated states and important material properties deriving from their non-relativistic spin-split band structure. Indeed, they are the magnetic analogue of unconventional superconductors and can yield spin polarized electrical currents in the absence of external magnetic fields, making them promising candidates for next-generation spintronics. Here, we report altermagnetism in the correlated insulator, magnetically-ordered tetragonal oxychalcogenide, La2_2O3_3Mn2_2Se2_2. Symmetry analysis reveals a dx2y2\mathit{d}_{x^2 - y^2}-wave type spin momentum locking, which is supported by density functional theory (DFT) calculations. Magnetic measurements confirm the AFM transition below \sim166 K while neutron pair distribution function analysis reveals a 2D short-range magnetic order that persists above the N\'eel temperature. Single crystals are grown and characterized using X-ray diffraction, optical and electron microscopy, and microRaman spectroscopy to confirm the crystal structure, stoichiometry, and uniformity.

Keywords

Cite

@article{arxiv.2410.14542,
  title  = {La$_2$O$_3$Mn$_2$Se$_2$: a correlated insulating layered d-wave altermagnet},
  author = {Chao-Chun Wei and Xiaoyin Li and Sabrina Hatt and Xudong Huai and Jue Liu and Birender Singh and Kyung-Mo Kim and Rafael M. Fernandes and Paul Cardon and Liuyan Zhao and Thao T. Tran and Benjamin M. Frandsen and Kenneth S. Burch and Feng Liu and Huiwen Ji},
  journal= {arXiv preprint arXiv:2410.14542},
  year   = {2024}
}