论文标题
van-der-waals抗fiferromagnet feps $ _3 $通过绝缘体 - 金属过渡的演变
Evolution of magnetic order in van-der-Waals antiferromagnet FePS$_3$ through insulator-metal transition
论文作者
论文摘要
分层的Van-Waals 2D磁性材料在基本的凝结物理学研究中以及在Spintronics和设备物理学中的潜在应用中引起了极大的兴趣。我们使用新的超高压技术提出中子粉末衍射数据,以测量莫特制造的2D蜂窝的磁性结构,抗fiferromagnet feps $ _3 $ at Passures tures tures tures tures tures tures tures tures tass tures tures tass and Wenterations us to 183 kbar且温度降低到80 k。这些数据通过高压磁力仪和反向Monte Carlo Carlo Modeledations Spinations On Spinations Out Spinations of Spinations的高压磁力磁盘辅助。随着压力的施加,先前测量的环境压力磁序会从抗铁磁磁性转换为铁磁间的平面间相互作用,从2D状的特征转换为类似于3D的特征。保留了$ AB $平面内的整体防铁磁结构,抗铁磁性在抗铁磁上耦合,但磁性传播向量从$(0 \:1 \:1 \:\ frac {1} {1} {2} {2} {2} {2})$($(0 \:1 \:1 \:1 \:1 \:0)$ a磁性单元,均为磁性单位,均为磁性单元,均为磁性单元。在较高的压力下,与该化合物中的第二个结构过渡和绝缘体 - 金属过渡一致,我们观察到这种远程的抑制和出现的磁性短距离秩序的出现,该磁性短距离秩序幸存于室温以上。反向蒙特卡洛拟合表明,这一阶段是原始环境压力结构的短期版本 - 返回反铁磁间相关性。磁性在HP-II金属状态中的持久性是与先前X射线光谱结果矛盾的观察结果,这表明旋转跨度过渡。
Layered van-der-Waals 2D magnetic materials are of great interest in fundamental condensed-matter physics research, as well as for potential applications in spintronics and device physics. We present neutron powder diffraction data using new ultra-high-pressure techniques to measure the magnetic structure of Mott-insulating 2D honeycomb antiferromagnet FePS$_3$ at pressures up to 183 kbar and temperatures down to 80 K. These data are complemented by high-pressure magnetometry and reverse Monte Carlo modeling of the spin configurations. As pressure is applied, the previously-measured ambient-pressure magnetic order switches from an antiferromagnetic to a ferromagnetic interplanar interaction, and from 2D-like to 3D-like character. The overall antiferromagnetic structure within the $ab$ planes, ferromagnetic chains antiferromagnetically coupled, is preserved, but the magnetic propagation vector is altered from $(0\:1\:\frac{1}{2})$ to $(0\:1\:0)$, a halving of the magnetic unit cell size. At higher pressures, coincident with the second structural transition and the insulator-metal transition in this compound, we observe a suppression of this long-range-order and emergence of a form of magnetic short-range order which survives above room temperature. Reverse Monte Carlo fitting suggests this phase to be a short-ranged version of the original ambient pressure structure - with a return to antiferromagnetic interplanar correlations. The persistence of magnetism well into the HP-II metallic state is an observation in seeming contradiction with previous x-ray spectroscopy results which suggest a spin-crossover transition.