| Literature DB >> 32500563 |
Yuxuan Peng1, Shilei Ding1, Man Cheng2, Qifeng Hu2, Jie Yang1, Fanggui Wang1, Mingzhu Xue1, Zhou Liu1, Zhongchong Lin1, Maxim Avdeev3, Yanglong Hou1,4,5, Wenyun Yang1, Yi Zheng2, Jinbo Yang1,4,6.
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 CrPS4 crystals is determined. CrPS4 shows an antiferromagnetic ground state (A-type) formed by out-of-plane ferromagnetic monolayers with interlayer antiferromagnetic coupling along the c axis below TN = 38 K. Due to small magnetic anisotropy energy and weak interlayer coupling, the low-field metamagnetic transitions in CrPS4, 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 CrPS4 for H∥c is parallel to the quasi-1D chains of CrS6 octahedra. The peculiar metamagnetic transitions and in-plane anisotropy make few-layer CrPS4 flakes a fascinating platform for studying 2D magnetism and for exploring prototype device applications in spintronics and optoelectronics.Keywords: 2D antiferromagnets; magnetic insulators; magnetic structures; metamagnetic transitions; spintronics
Year: 2020 PMID: 32500563 DOI: 10.1002/adma.202001200
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849