论文标题
在分层磁NIPS中通过压力调节的尺寸跨界
Dimensional Crossover Tuned by Pressure in Layered Magnetic NiPS3
论文作者
论文摘要
分层的磁过渡金属硫代磷酸盐NIPS3具有独特的二维(2D)磁性和电子行为。电子带结构和相应的磁态有望对层间相互作用敏感,这可以通过外部压力调节。在这里,我们报告了一个绝缘子 - 金属过渡,并在由静水压力引起的结构中的2d-3d跨界过程中伴有磁性崩溃。从单斜晶(C2 = M)到三角(P-31M)晶格的两阶段过渡是通过Ab Intible模拟鉴定的,并通过高压XRD和Raman数据确认,对应于沿A轴的层滑动机构。温度依赖性抗性测量和室温红外光谱表明,绝缘体金属转变发生在20 GPA附近以及磁性崩溃附近,这是通过低温拉曼测量和理论计算进一步证实的。这些结果在结构变化,电运和磁相跃迁之间建立了很强的相关性,并扩展了我们对分层磁性材料的理解。
Layered magnetic transition-metal thiophosphate NiPS3 has unique two-dimensional (2D) magnetic properties and electronic behavior. The electronic band structure and corresponding magnetic state are expected to sensitive to the interlayer interaction, which can be tuned by external pressure. Here, we report an insulator-metal transition accompanied with magnetism collapse during the 2D-3D crossover in structure induced by hydrostatic pressure. A two-stage phase transition from monoclinic (C2=m) to trigonal (P-31m) lattice is identified by ab initio simulation and confirmed by high-pressure XRD and Raman data, corresponding to a layer by layer slip mechanism along the a-axis. Temperature dependence resistance measurements and room temperature infrared spectroscopy show that the insulator-metal transition occurs near 20 GPa as well as magnetism collapse, which is further confirmed by low temperature Raman measurement and theoretical calculation. These results establish a strong correlation among the structural change, electric transport, and magnetic phase transition and expand our understandings about the layered magnetic materials.