Prediction of high-Tc superconductivity in ternary actinium beryllium hydrides at low pressure

Fuente: arXiv
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Main Authors: Gao, Kun, Cui, Wenwen, Shi, Jingming, Durajski, Artur P., Hao, Jian, Botti, Silvana, Marques, Miguel A. L., Li, Yinwei
Format: Preprint
Published: 2024
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author Gao, Kun
Cui, Wenwen
Shi, Jingming
Durajski, Artur P.
Hao, Jian
Botti, Silvana
Marques, Miguel A. L.
Li, Yinwei
author_facet Gao, Kun
Cui, Wenwen
Shi, Jingming
Durajski, Artur P.
Hao, Jian
Botti, Silvana
Marques, Miguel A. L.
Li, Yinwei
contents Hydrogen-rich superconductors are promising candidates to achieve room-temperature superconductivity. However, the extreme pressures needed to stabilize these structures significantly limit their practical applications. An effective strategy to reduce the external pressure is to add a light element M that binds with H to form MHx units, acting as a chemical precompressor. We exemplify this idea by performing ab initio calculations of the Ac-Be-H phase diagram, proving that the metallization pressure of Ac-H binaries, for which critical temperatures as high as 200 K were predicted at 200 GPa, can be significantly reduced via beryllium incorporation. We identify three thermodynamically stable (AcBe2H10, AcBeH8, and AcBe2H14) and four metastable compounds (fcc AcBeH8, AcBeH10, AcBeH12 and AcBe2H16). All of them are superconductors. In particular, fcc AcBeH8 remains dynamically stable down to 10 GPa, where it exhibits a superconducting transition temperature Tc of 181 K. The Be-H bonds are responsible for the exceptional properties of these ternary compounds and allow them to remain dynamically stable close to ambient pressure. Our results suggest that high-Tc superconductivity in hydrides is achievable at low pressure and may stimulate experimental synthesis of ternary hydrides.
format Preprint
id arxiv_https___arxiv_org_abs_2411_19028
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Prediction of high-Tc superconductivity in ternary actinium beryllium hydrides at low pressure
Gao, Kun
Cui, Wenwen
Shi, Jingming
Durajski, Artur P.
Hao, Jian
Botti, Silvana
Marques, Miguel A. L.
Li, Yinwei
Superconductivity
Hydrogen-rich superconductors are promising candidates to achieve room-temperature superconductivity. However, the extreme pressures needed to stabilize these structures significantly limit their practical applications. An effective strategy to reduce the external pressure is to add a light element M that binds with H to form MHx units, acting as a chemical precompressor. We exemplify this idea by performing ab initio calculations of the Ac-Be-H phase diagram, proving that the metallization pressure of Ac-H binaries, for which critical temperatures as high as 200 K were predicted at 200 GPa, can be significantly reduced via beryllium incorporation. We identify three thermodynamically stable (AcBe2H10, AcBeH8, and AcBe2H14) and four metastable compounds (fcc AcBeH8, AcBeH10, AcBeH12 and AcBe2H16). All of them are superconductors. In particular, fcc AcBeH8 remains dynamically stable down to 10 GPa, where it exhibits a superconducting transition temperature Tc of 181 K. The Be-H bonds are responsible for the exceptional properties of these ternary compounds and allow them to remain dynamically stable close to ambient pressure. Our results suggest that high-Tc superconductivity in hydrides is achievable at low pressure and may stimulate experimental synthesis of ternary hydrides.
title Prediction of high-Tc superconductivity in ternary actinium beryllium hydrides at low pressure
topic Superconductivity
url https://arxiv.org/abs/2411.19028