High-temperature superconductivities and crucial factors influencing the stability of LaThH under moderate pressures
The recent discovery of high-temperature superconductivity in compressed hydrides has reignited the long-standing quest for room-temperature superconductors. However, the synthesis of superconducting hydrides under moderate pressure and the identification of crucial factors that affect their stabili...
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Veröffentlicht in: | Physical chemistry chemical physics : PCCP 2024-03, Vol.26 (1), p.8237-8246 |
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Zusammenfassung: | The recent discovery of high-temperature superconductivity in compressed hydrides has reignited the long-standing quest for room-temperature superconductors. However, the synthesis of superconducting hydrides under moderate pressure and the identification of crucial factors that affect their stability remain challenges. Here, we predicted the ternary clathrate phases of LaThH
12
with potential superconductivity under high pressures and specifically proposed a novel
R
3&cmb.macr;
c
-LaThH
12
phase exhibiting a remarkable
T
c
of 54.95 K at only 30 GPa to address these confusions. Our first-principles studies show that the high-
T
c
value of
Pm
3&cmb.macr;
m
and
Cmmm
-LaThH
12
phases was induced by the strong electron-phonon coupling driven by the synergy of the electron-phonon matrix element and phonon softening caused by Fermi surface nesting. Importantly, we demonstrate the dual effects of enhanced ionic bonding and expanded orbital hybridization between Th-6f and H-sp
3
orbitals during depressurization are primary factors governing the dynamic stability of
R
3&cmb.macr;
c
-LaThH
12
at low pressures. Our findings offer crucial insights into the underlying mechanisms governing low-pressure stability and provide guidance for experimental efforts aimed at realizing hydrogen-based superconductors with both low synthesis pressures and high-
T
c
.
The dual effects of enhanced ionic bonding and expanded orbital hybridization between orbitals during depressurization are primary factors governing the dynamic stability of hydrides at low pressures. |
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ISSN: | 1463-9076 1463-9084 |
DOI: | 10.1039/d3cp05408j |