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Magnesium-Based Hydride Superconductor Mg7LiH with Tc ∼ 59 K under Ambient Pressure
Chenyi Yang1, Juan Du1, Chong Tian2
1School of Physics and Optoelectronic Engineering, Beijing University of Technology, Beijing 100124, China.
None:
Ambient-pressure high-temperature superconductivity in low-hydrogen compounds paves the way for superconducting devices to operate without extreme conditions. This study introduces a light-element doping strategy, successfully designing the low-hydrogen, metal-bonded layered superconductor Mg7LiH. This material demonstrates superconductivity with a superconducting transition temperature (Tc) of 59 K and a Hc of 8864 Oe under ambient pressure while maintaining excellent ductility. Hydrogen atoms dominate the electron-phonon coupling (EPC) mechanism governing Tc. Compared with (Mg4)2H, Mg7LiH exhibits superior superconductivity, which arises from Li-induced charge transfer, elevated electronic density of states (DOS) at the Fermi level, and improved Fermi surface nesting. This work not only validates light-element doping as an effective approach to tune superconducting properties in low-hydrogen hydrides but also provides theoretical guidance for experimentally synthesizing high-performance superconductors at ambient pressure.
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