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April 15, 2024Physical Review Letters148 citationsOpen Access

Feasible Route to High-Temperature Ambient-Pressure Hydride Superconductivity

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KDKapildeb DoluiLCLewis J. ConwayCHChristoph Heil

Key Points

  • A metastable ambient-pressure hydride superconductor, Mg2IrH6, has a predicted critical temperature of 160 K.
  • Using high-throughput computation, the study evaluated a wide range of ternary hydrides.
  • This analysis incorporates factors like thermodynamic, dynamic, and magnetic stability to identify potential materials for superconductivity in realistic conditions. The proposed synthesis route leverages Mg2IrH7, a stable insulator at high pressure, highlighting potential challenges ahead.

Abstract

A key challenge in materials discovery is to find high-temperature superconductors. Hydrogen and hydride materials have long been considered promising materials displaying conventional phonon-mediated superconductivity. However, the high pressures required to stabilize these materials have restricted their application. Here, we present results from high-throughput computation, considering a wide range of high-symmetry ternary hydrides from across the periodic table at ambient pressure. This large composition space is then reduced by considering thermodynamic, dynamic, and magnetic stability before direct estimations of the superconducting critical temperature. This approach has revealed a metastable ambient-pressure hydride superconductor, Mg₂IrH₆, with a predicted critical temperature of 160 K, comparable to the highest temperature superconducting cuprates. We propose a synthesis route via a structurally related insulator, Mg₂IrH₇, which is thermodynamically stable above 15 GPa, and discuss the potential challenges in doing so.

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Cite This Study

Dolui et al. (2024) studied this question.

synapsesocial.com/papers/68e6f047b6db64358766accchttps://doi.org/10.1103/physrevlett.132.166001
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