Peng Feng, Sun Ying, Pickard Chris J, Needs Richard J, Wu Qiang, Ma Yanming
Beijing Computational Science Research Center, Beijing 10084, China.
College of Physics and Electronic Information, Luoyang Normal University, Luoyang 471022, China and Henan Key Laboratory of Electromagnetic Transformation and Detection, Luoyang 471022, China.
Phys Rev Lett. 2017 Sep 8;119(10):107001. doi: 10.1103/PhysRevLett.119.107001.
Room-temperature superconductivity has been a long-held dream and an area of intensive research. Recent experimental findings of superconductivity at 200 K in highly compressed hydrogen (H) sulfides have demonstrated the potential for achieving room-temperature superconductivity in compressed H-rich materials. We report first-principles structure searches for stable H-rich clathrate structures in rare earth hydrides at high pressures. The peculiarity of these structures lies in the emergence of unusual H cages with stoichiometries H_{24}, H_{29}, and H_{32}, in which H atoms are weakly covalently bonded to one another, with rare earth atoms occupying the centers of the cages. We have found that high-temperature superconductivity is closely associated with H clathrate structures, with large H-derived electronic densities of states at the Fermi level and strong electron-phonon coupling related to the stretching and rocking motions of H atoms within the cages. Strikingly, a yttrium (Y) H_{32} clathrate structure of stoichiometry YH_{10} is predicted to be a potential room-temperature superconductor with an estimated T_{c} of up to 303 K at 400 GPa, as derived by direct solution of the Eliashberg equation.
室温超导一直是人们长久以来的梦想,也是一个深入研究的领域。近期在高度压缩的硫化氢(H)中发现200K的超导性,这表明在富含H的压缩材料中实现室温超导具有潜力。我们报道了在高压下对稀土氢化物中稳定的富H笼形结构进行的第一性原理结构搜索。这些结构的独特之处在于出现了化学计量比为H₂₄、H₂₉和H₃₂的异常H笼,其中H原子彼此之间以弱共价键相连,稀土原子占据笼的中心。我们发现高温超导与H笼形结构密切相关,在费米能级处有大量源自H的态密度,且与笼内H原子的拉伸和摇摆运动相关的强电子 - 声子耦合。引人注目的是,通过直接求解埃利亚什贝格方程得出,化学计量比为YH₁₀的钇(Y)H₃₂笼形结构预计是一种潜在的室温超导体,在400GPa时估计Tc高达303K。