科研成果 by Year: 2023

2023
He Y, Du J, Liu S-ming, Tian C, Zhang M, Zhu Y-H, Zhong H, Wang X, Shi J-jie. Enhancement for phonon-mediated superconductivity up to 37 K in few-hydrogen metal-bonded layered magnesium hydride under atmospheric pressure. Phys. Chem. Chem. Phys. [Internet]. 2023;25:21037-21044. 访问链接Abstract
The discovery of superconductivity in layered MgB2 has renewed interest in the search for high-temperature conventional superconductors, leading to the synthesis of numerous hydrogen-dominated materials with high critical temperatures (Tc) under high pressures. However, achieving a high-Tc superconductor under ambient pressure remains a challenging goal. In this study, we propose a novel approach to realize a high-temperature superconductor under ambient pressure by introducing a hexagonal H monolayer into the hexagonal close-packed magnesium lattice, resulting in a new and stable few-hydrogen metal-bonded layered magnesium hydride (Mg4)2H1. This compound exhibits superior ductility compared to multi-hydrogen, cuprate, and iron-based superconductors due to its metallic bonding. Our unconventional strategy diverges from the conventional design principles used in hydrogen-dominated covalent high-temperature superconductors. Using anisotropic Migdal–Eliashberg equations, we demonstrate that the stable (Mg4)2H1 compound is a typical phonon-mediated superconductor, characterized by strong electron–phonon coupling and an excellent Tc of 37 K under ambient conditions, comparable to that of MgB2. Our findings not only present a new pathway for exploring high-temperature superconductors but also provide valuable insights for future experimental synthesis endeavors.
He Y, Lu J, Wang X, Shi J-jie. Phonon-mediated superconductivity in the metal-bonded perovskite $\mathrmAl_4\mathrmH$ up to 54 K under ambient pressure. Phys. Rev. B [Internet]. 2023;108:054515. 访问链接
He Y, Shi J-jie. Few-Hydrogen High-Tc Superconductivity in (Be4)2H Nanosuperlattice with Promising Ductility under Ambient Pressure. Nano Letters [Internet]. 2023;23:8126-8131. 访问链接