化学
超导电性
锕系元素
笼状水合物
镧系元素
化学计量学
氢
室温超导体
氢化物
Atom(片上系统)
化学物理
高温超导
物理化学
无机化学
凝聚态物理
水合物
离子
物理
有机化学
计算机科学
嵌入式系统
作者
Xin Zhong,Ying Sun,Toshiaki Iitaka,Meiling Xu,Hanyu Liu,Russell J. Hemley,Changfeng Chen,Yanming Ma
摘要
Achieving room-temperature superconductivity has been an enduring scientific pursuit driven by broad fundamental interest and enticing potential applications. The recent discovery of high-pressure clathrate superhydride LaH10 with superconducting critical temperatures (Tc) of 250-260 K made it tantalizingly close to realizing this long-sought goal. Here, we report a remarkable finding based on an advanced crystal structure search method of a new class of extremely hydrogen-rich clathrate superhydride MH18 (M: rare-earth/actinide atom) stoichiometric compounds stabilized at an experimentally accessible pressure of 350 GPa. These compounds are predicted to host Tc up to 330 K, which is well above room temperature. The bonding and electronic properties of these MH18 clathrate superhydrides closely resemble those of atomic metallic hydrogen, giving rise to the highest Tc hitherto found in a thermodynamically stable hydride compound. An in-depth study of these extreme superhydrides offers insights for elucidating phonon-mediated superconductivity above room temperature in hydrogen-rich and other low-Z materials.
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