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Hydrogen Clathrate Structures in Rare Earth Hydrides at High Pressures: Possible Route to Room-Temperature Superconductivity

Feng Peng, Ying Sun, Chris J. Pickard, Richard J. Needs, Qiang Wu, Yanming Ma

DOI 10.1103/PhysRevLett.119.107001 · Physical Review Letters

T1

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Abstract

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 H24, H29, and H32, 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) H32 clathrate structure of stoichiometry YH10 is predicted to be a potential room-temperature superconductor with an estimated Tc of up to 303 K at 400 GPa, as derived by direct solution of the Eliashberg equation.

Source-reported materials — not catalogue approval

FormulaReported Tc (K)Pressure (GPa)Type
YH10

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303400 GPaunknown
YH9

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276150 GPaunknown
LaH10

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288200 GPaunknown
CaH6

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235Pressure not reportedunknown
YH6

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264Pressure not reportedunknown
MgH6

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400Pressure not reportedunknown

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