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DOE OSTI · 3729582

Pressure-Stabilized MnSb2 with Complex Incommensurate Magnetic Order

Abstract

Marcasite-type compounds have been proposed as promising hosts of exotic magnetic quantum states, yet experimental realizations in stoichiometric, disorder-free systems remain limited. Here, we report the high-pressure stabilization and magnetic characterization of MnSb2, a marcasite-type compound that is thermodynamically metastable under ambient pressure. Single crystals were synthesized using a cubic multianvil press at 3.3 GPa and 490 °C for 24 h, and powder and single-crystal X-ray diffraction confirm the orthorhombic Pnnm structure. These crystals are stable at ambient pressure for a long time up to between 450 and 500 K. Heat-capacity measurements reveal phase transitions at approximately T0 ∼ 118 K and T1 ∼ 220 K. Neutron diffraction uncovers an unconventional magnetic state below T1 ∼ 220 K. Magnetic powder neutron diffraction refinements reveal possible multiple magnetic configurations that provide comparably acceptable fits to the experimental data. While most solutions are consistent with a spin-density-wave (SDW) description, helical models systematically yield inferior agreement factors. Across a broad range of models, the Mn ordered moment reaches a maximum value of approximately 2 μB and remains predominantly collinear, with minimal canting along the c-axis. At 200 K, the magnetic propagation vector is q = (0, 0.3975, 0.3783); upon cooling, the b component increases toward 0.5, reflecting a temperature-dependent evolution of the modulation. The need for modification of the magnetic model between high and low temperatures further highlights the complex and strongly temperature-dependent nature of the magnetic order in this system. These results establish MnSb2 as a pressure-stabilized marcasite magnet with a tunable, complex magnetic state and a compelling stoichiometric platform for exploring unconventional magnetic behavior, including potential altermagnetism.

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BibTeXRIS

Xu, Mingyu [Michigan State University , , , ,; Iowa State University , , , ,; Iowa State University , , , ,], Boswell, Matt [Michigan State University , , , ,; Oak Ridge National Laboratory , , , ,], Ding, Qing-Ping [Iowa State University , , , ,], Peng, Cheng [Michigan State University , , , ,] (ORCID:0000000289772749), Sapkota, Aashish [Iowa State University , , , ,; Iowa State University , , , ,], Zhang, Qiang [Oak Ridge National Laboratory , , , ,] (ORCID:0000000303897039), Yahne, Danielle [Oak Ridge National Laboratory , , , ,] (ORCID:0000000250071689), Bud’ko, Sergey. L. [Iowa State University , , , ,; Iowa State University , , , ,], Furukawa, Yuji [Iowa State University , , , ,; Iowa State University , , , ,], Canfield, Paul. C. [Iowa State University , , , ,; Iowa State University , , , ,], Ribeiro, Raquel A. [Iowa State University , , , ,; Iowa State University , , , ,], Xie, Weiwei [Michigan State University , , , ,] (ORCID:0000000255008195). 2026-09-02. Pressure-Stabilized MnSb2 with Complex Incommensurate Magnetic Order. https://doi.org/10.1021/acs.jpcc.6c03519

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