Magnetic Structure and Metamagnetic Transitions in the van der Waals Antiferromagnet CrPS<sub>4</sub>.

Peng, Yuxuan; Ding, Shilei; Cheng, Man; Hu, Qifeng; Yang, Jie; Wang, Fanggui; Xue, Mingzhu; Liu, Zhou et al. · Adv Mater · 2020

basic_science · Level V

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Abstract

In 2D magnets, interlayer exchange coupling is generally weak due to the van der Waals layered structure but it still plays a vital role in stabilizing the long-range magnetic ordering and determining the magnetic properties. Using complementary neutron diffraction, magnetic, and torque measurements, the complete magnetic phase diagram of CrPS<sub>4</sub> crystals is determined. CrPS<sub>4</sub> shows an antiferromagnetic ground state (A-type) formed by out-of-plane ferromagnetic monolayers with interlayer antiferromagnetic coupling along the c axis below T<sub>N</sub> = 38 K. Due to small magnetic anisotropy energy and weak interlayer coupling, the low-field metamagnetic transitions in CrPS<sub>4,</sub> that is, a spin-flop transition at ≈0.7 T and a spin-flip transition from antiferromagnetic to ferromagnetic under a relatively low field of 8 T, can be realized for H∥c. Intriguingly, with an inherent in-plane lattice anisotropy, spin-flop-induced moment realignment in CrPS<sub>4</sub> for H∥c is parallel to the quasi-1D chains of CrS<sub>6</sub> octahedra. The peculiar metamagnetic transitions and in-plane anisotropy make few-layer CrPS<sub>4</sub> flakes a fascinating platform for studying 2D magnetism and for exploring prototype device applications in spintronics and optoelectronics.