arXiv · 2604.02114
Altermagnetism and Room-Temperature Metal-to-Insulator Transition in CsCr$_2$S$_2$O
Abstract
Metal-to-insulator transitions (MITs), particularly near room temperature, have been extensively studied in nonmagnetic and conventional ferromagnetic and antiferromagnetic systems, yet the co-emergence of MIT and altermagnetism (AM) remains unexplored. Here, a layered chromium-based compound CsCr$_2$S$_2$O that realizes this coexistence was synthesized. It crystalizes in CeCr$_2$Si$_2$C-type structure with Cr moments orders in a C-type antiferromagnetic configuration below $T_\mathrm{N}$ = 326 K, constituting a room-temperature d-wave altermagnet. In the altermagnetic state, a subsequent Verwey-type MIT appears at $T_\mathrm{MI}$ = 305 K, driven by a tetragonal-to-orthorhombic structural distortion and stripe charge ordering of Cr$^{+2}$/Cr$^{+3}$ ions, while maintaining its altermagnetic character. First-principles calculations show moment-dependent spin-split electronic structures with maximum splitting energies of ~0.6 eV and ~0.3 eV in the metallic and insulating states, respectively. Our work links the two prominent phenomena, MIT and AM, in a single material, establishing a new platform for potential spintronic applications.
Explore related subjects
Keep this discovery
Yi Liu, Chen-Chao Xu, Jin-Ke Bao, Bai-Jiang Lv, Hao Li, Jing Li, Yi-Qiang Lin, Hua-Xun Li, Yi-Ming Lu, Xin-Yu Zhao, Wu-Zhang Yang, Zhen-Yi Zhang, Xian-Yan Chen, Wen-he Jiao, Ji-Yong Liu, Bai-Ren Zhu, Guang-Han Cao. 2026-04-02. Altermagnetism and Room-Temperature Metal-to-Insulator Transition in CsCr$_2$S$_2$O. https://arxiv.org/abs/2604.02114
Cite the original work for its findings. Save a collection to share your selection of sources.