Advances in the Synthesis and Superconductivity of Lanthanide Polyhydrides Under High Pressure

Jianning Guo, Su Chen, Wuhao Chen, Xiaoli Huang, T. Cui
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引用次数: 1

Abstract

Room-temperature superconductors have long been the ultimate goal of scientists. Pressure-stabilized hydrides are a new rapidly growing class of high-temperature superconductors and are believed to be a new superconducting system, undoubtedly leading to a surge in the discovery of new hydrogen-rich materials. They are the forefront of physics and material science. Lanthanide polyhydrides formed under pressure are promising conventional superconductors. Especially, both the theoretical and experimental reports on lanthanum superhydrides under pressure, exhibiting superconductivity at temperatures as high as 250 K, have further stimulated an intense search for room-temperature superconductors in hydrides. This review focuses on the recent advances of crystal structures, stabilities, and superconductivity of lanthanide polyhydrides at high pressures, including the experimental results from our group. By using in situ four-probe electrical measurements and the synchrotron X-ray diffraction technique, we have identified several high-temperature superconducting phases: a lanthanum superhydride and two cerium superhydrides. The present work indicates that superconductivity declines along the La–Ce–Pr–Nd series, while magnetism becomes more and more pronounced. These discoveries have enriched the binary system of clathrate superhydrides and provided more hints for studying the role of rare earth metal elements having high-temperature superconductivity.
镧系多氢化物高压合成及其超导性研究进展
长期以来,室温超导体一直是科学家们的终极目标。压力稳定氢化物是一种快速发展的新型高温超导体,被认为是一种新的超导系统,无疑会导致新的富氢材料的发现激增。它们是物理学和材料科学的前沿。在压力下形成的镧系多氢化物是很有前途的常规超导体。特别是,关于高压下镧超氢化物的理论和实验报告,在高达250 K的温度下表现出超导性,进一步刺激了对氢化物中室温超导体的强烈探索。本文综述了近年来镧系多氢化物在高压下的晶体结构、稳定性和超导性等方面的研究进展,包括本课组的实验结果。通过原位四探针电测量和同步加速器x射线衍射技术,我们确定了几个高温超导相:一个镧超氢化物和两个铈超氢化物。研究表明,在La-Ce-Pr-Nd系列中,超导性逐渐减弱,而磁性则越来越明显。这些发现丰富了笼形超氢化物二元体系,为研究具有高温超导性的稀土金属元素的作用提供了更多线索。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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