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Design Principles for High Temperature Superconductors with Hydrogen-based Alloy Backbone at Moderate Pressure

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arxiv 2106.09879 v2 pith:7FEO74BM submitted 2021-06-18 cond-mat.supr-con

Design Principles for High Temperature Superconductors with Hydrogen-based Alloy Backbone at Moderate Pressure

classification cond-mat.supr-con
keywords pressuressuperconductorshydridealloybackbonehighpressureroom-temperature
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Hydrogen-based superconductors provide a route to the long-sought goal of room-temperature superconductivity, but the high pressures required to metallize these materials limit their immediate application. For example, carbonaceous sulfur hydride, the first room-temperature superconductor, can reach a critical temperature (Tc) of 288 K only at the extreme pressure of 267 GPa. The next recognized challenge is the realization of room-temperature superconductivity at significantly lower pressures. Here, we propose a strategy for the rational design of high-temperature superconductors at low pressures by alloying small-radius elements and hydrogen to form ternary hydride superconductors with alloy backbones. We identify a hitherto unknown fluorite-type backbone in compositions of the form AXH8, which exhibit high temperature superconductivity at moderate pressures. The Fm-3m phase of LaBeH8, with a fluorite-type H-Be alloy backbone, is predicted to be metastable and superconducting with a Tc ~ 191 K at 50 GPa; a substantially lower pressure than that required by the geometrically similar clathrate hydride LaH10 (170 GPa). Our approach paves the way for finding high-Tc ternary hydride superconductors at conditions close to ambient pressures.

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