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Magnetic Isotropy/Anisotropy in Layered Metal Phosphorous Trichalcogenide MPS3 (M = Mn Fe)Single Crystals

机译:层状金属磷硫属元素化物MPS3(M = MnFe)中的磁各向同性/各向异性单晶体

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摘要

Despite the fact that two-dimensional layered magnetic materials hold immense potential applications in the field of spintronic devices, tunable magnetism is still a challenge due to the lack of controllable synthesis. Herein, high-quality single crystals MPS3 (M= Mn, Fe) of millimeter size were synthesized through the chemical vapor transport method. After systemic structural characterizations, magnetic properties were studied on the bulk MPS3 layers through experiments, along with first principle theoretical calculations. The susceptibilities as well as the EPR results evidently revealed unique isotropic and anisotropic behavior in MnPS3 and FePS3 crystals, respectively. It is worth noting that both of these materials show antiferromagnetic states at measured temperatures. The estimated antiferromagnetic transition temperature is 78 K for bulk MnPS3 and 123 K for FePS3 crystals. The spin polarized density functional theory calculations confirmed that the band gap of the antiferromagnetic states could be generated owing to asymmetric response all over the energy range. The ferromagnetic state in MnPS3 and FePS3 is less stable as compared to the antiferromagnetic state, resulting in antiferromagnetic behavior. Additionally, frequency-dependent dielectric functions for parallel and perpendicular electric field component vectors, along with the absorption properties of MPS3, are thoroughly investigated.
机译:尽管事实上二维多层磁性材料在自旋电子器件领域具有巨大的潜在应用,但是由于缺乏可控的合成,可调谐的磁性仍然是一个挑战。在此,通过化学气相传输法合成了毫米级的高质量单晶MPS3(M = Mn,Fe)。在对系统进行结构表征后,通过实验以及第一原理理论计算,对大块MPS3层的磁性能进行了研究。磁化率和EPR结果分别显示MnPS3和FePS3晶体具有独特的各向同性和各向异性行为。值得注意的是,这两种材料在测量温度下均显示反铁磁状态。块状MnPS3的估计反铁磁转变温度为78 K,FePS3晶体的估计为123K。自旋极化密度泛函理论计算证实,由于在整个能量范围内的不对称响应,可以产生反铁磁态的带隙。与反铁磁状态相比,MnPS3和FePS3中的铁磁状态不稳定,从而导致反铁磁行为。此外,还对平行和垂直电场分量矢量的频率相关介电函数以及MPS3的吸收特性进行了深入研究。

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