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Unlocking the origin of stability and superconductivity in LaBeH8 at submegabar pressure

Zefang Wang, Hong jian Zhao, Xin Zhong, Hanyu Liu, Yanming Ma

DOI 10.1103/PhysRevB.109.214506 · Physical Review B

T1

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Abstract

The recent synthesis of LaBeH8 with a superconducting critical temperature (Tc) up to 110 K at a pressure of 80 GPa generates great hope to achieve high-temperature superconductivity in ternary hydrides at submegabar pressure. However, the underlying mechanism governing its unexpected stability and high-temperature superconductivity remains elusive, which impedes the demanding design of other high-Tc ternary hydrides on the way to room-temperature superconductivity. Here, we conducted a comprehensively theoretical study to reveal the origin of the stability and superconductivity of LaBeH8. We found that LaBeH8 could be viewed as a rocksalt compound of La2+[BeH8]2− and its unexpected stability lies in the emergence of an unusually negatively charged molecular [BeH8]2− unit containing polarized Be-H covalent bonds. This [BeH8]2−unit gives rise to an intrinsic metallic feature in the solid, and its interaction with neighboring ones via weak H-H coupling contributes mostly to the high-temperature superconductivity. Our current results offer a key perspective of high-temperature superconductivity among ternary hydrides, thus inspiring a potential developing strategy to design high-Tc hydrides via the exploration of similar intrinsic metallic salt structure motifs containing a variety of hydrogen-rich covalent units.

Source-reported materials — not catalogue approval

FormulaReported Tc (K)Pressure (GPa)Type
LaBeH8

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11080 GPaunknown
LaBeH8

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11480 GPaunknown
CaH6

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215170 GPaunknown
YH6

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200Pressure not reportedunknown
YH9

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Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula.

200Pressure not reportedunknown
LaH10

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200Pressure not reportedunknown
BaReH9

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7Pressure not reportedunknown
Li5MoH11

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7Pressure not reportedunknown

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