Wang Limin, Hu Rongwei, Anand Yash, Saha Shanta R, Jeffries Jason R, Paglione Johnpierre
Maryland Quantum Materials Center, Department of Physics, University of Maryland, College Park, MD 20742, USA.
Lawrence Livermore National Laboratory, 7000 East Avenue, Livermore, CA 94550, USA.
Materials (Basel). 2024 Jul 13;17(14):3476. doi: 10.3390/ma17143476.
We report a comprehensive study of Sperrylite (PtAs), the main platinum source in natural minerals, as a function of applied pressures up to 150 GPa. While no structural phase transition is detected from pressure-dependent X-ray measurements, the unit cell volume shrinks monotonically with pressure following the third-order Birch-Murnaghan equation of state. The mildly semiconducting behavior found in pure synthesized crystals at ambient pressures becomes more insulating upon increasing the applied pressure before metalizing at higher pressures, giving way to the appearance of an abrupt decrease in resistance near 3 K at pressures above 92 GPa consistent with the onset of a superconducing phase. The pressure evolution of the calculated electronic band structure reveals the same physical trend as our transport measurements, with a non-monotonic evolution explained by a hole band that is pushed below the Fermi energy and an electron band that approaches it as a function of pressure, both reaching a touching point suggestive of an excitonic state. A Lifshitz transition of the electronic structure and an increase in the density of states may naturally explain the onset of superconductivity in this material.
我们报告了对天然矿物中主要铂源砷铂矿(PtAs)在高达150吉帕的外加压力下的全面研究。虽然从压力依赖的X射线测量中未检测到结构相变,但根据三阶Birch-Murnaghan状态方程,晶胞体积随压力单调收缩。在环境压力下纯合成晶体中发现的轻度半导体行为,在增加外加压力时变得更绝缘,然后在更高压力下金属化,在高于92吉帕的压力下,在接近3 K时电阻出现突然下降,这与超导相的开始一致。计算出的电子能带结构的压力演化揭示了与我们的输运测量相同的物理趋势,其非单调演化由一个被推到费米能级以下的空穴带和一个随压力接近费米能级的电子带解释,两者达到一个暗示激子态的接触点。电子结构的Lifshitz转变和态密度的增加可能自然地解释了这种材料中超导性的开始。