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Phase stability and superconductivity of lead hydrides at high pressure

Bole Chen, Lewis J. Conway, Weiguo Sun, Xiaoyu Kuang, Cheng Lu, Andreas Hermann

DOI 10.1103/PhysRevB.103.035131 · Physical Review B

T1

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Abstract

Density functional theory calculations and crystal structure predictions using the particle swarm optimization method have been combined to determine stable hydrides of lead under pressure. In contrast to other group-IVa hydrides, the stoichiometry PbH6 is the first hydride to become stable, at just under 1 Mbar. For two previously studied stoichiometries, PbH4 and PbH8, energetically more favorable phases were identified to become stable around 2 Mbar. In all structures, the hydrogenic sublattices comprise negatively charged H2δ− molecules. Competitive PbH4 and PbH6 structures are layered. PbH6 features H2 molecules intercalated between hcp Pb layers, the stable phase of dense pure lead, thus offering a potentially straightforward route towards synthesis. In PbH8, the Pb lattice adapts a β-Sn structure, and hydrogen atoms form quasi-one-dimensional-chains. All structures were found to be metallic and to feature superconductivity in their respective stability range, with moderately high Tc in the range 60–100 K for PbH4 and PbH6 and 161–178 K for PbH8.

Source-reported materials — not catalogue approval

FormulaReported Tc (K)Pressure (GPa)Type
PbH4

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60Pressure not reportedunknown
PbH6

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60Pressure not reportedunknown
PbH8

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161Pressure not reportedunknown
SiH4

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1796 GPaunknown
SiH4

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17120 GPaunknown
GeH4

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70500 GPaunknown
SnH4

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80120 GPaunknown
PbH4(H2)2

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107230 GPaunknown

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