论文标题
pr4ni $ _3 $ o $ _ {10} $中金属对金属过渡的各向异性特征
Anisotropic character of the metal-to-metal transition in Pr4Ni$_3$O$_{10}$
论文作者
论文摘要
作为Ruddlesden-Popper Ln $ _ {n+1} $ ni $ _n $ o $ $ _ {3n+1} $系列稀有稀有尼克拉酸盐,pr4ni $ _3 $ _3 $ o $ _ {10} $ Infinite quasi-two-dwo-dimensional perovskite perovskite liboers li-o ni-o ni-osike。尽管以前的研究已经揭示了TPT = 157 K的金属到金属过渡,但尚未对与此转变相关的物理性质进行全面研究。我们已经在高氧气压力下生长了PR4NI3O10的单晶,并报告了该相变向周围的物理特性,例如热容量,电动传输和磁化。我们观察到平面内和平面外特性之间明显的各向异性行为:A-B平面内TPT的金属对金属过渡,以及沿C轴沿C轴沿C轴降低的金属对绝缘体样过渡。此外,在TPT上观察到了各向异性和异常的负极耐药性,我们将其归因于对一阶转变的轻微抑制。 curie-weiss定律可以很好地描述磁性敏感性,在高温和低温相之间具有不同的居里构和保利旋转敏感性。单晶X射线衍射测量值显示了不同NiO6八面体从高温相到低温相的形状变化。 NI站点环境的这种微妙变化可能是高温和低温下不同物理性质的原因。
As a member of the Ruddlesden-Popper Ln$_{n+1}$Ni$_n$O$_{3n+1}$ series rare-earth-nickelates, the Pr4Ni$_3$O$_{10}$ consists of infinite quasi-two-dimensional perovskite-like Ni-O based layers. Although a metal-to-metal phase transition at Tpt = 157 K has been revealed by previous studies, a comprehensive study of physical properties associated with this transition has not yet been performed. We have grown single crystals of Pr4Ni3O10 at high oxygen pressure, and report on the physical properties around that phase transition, such as heat-capacity, electric-transport and magnetization. We observe a distinctly anisotropic behavior between in-plane and out-of-plane properties: a metal-to-metal transition at Tpt within the a-b plane, and a metal-to-insulator-like transition along the c-axis with decreasing temperature. Moreover, an anisotropic and anomalous negative magneto-resistance is observed at Tpt that we attribute to a slight suppression of the first-order transition with magnetic field. The magnetic-susceptibility can be well described by a Curie-Weiss law, with different Curie-constants and Pauli-spin susceptibilities between the high-temperature and the low-temperature phases. The single crystal X-ray diffraction measurements show a shape variation of the different NiO6 octahedra from the high-temperature phase to the low-temperature phase. This subtle change of the environment of the Ni sites is likely responsible for the different physical properties at high and low temperatures.