高温超导体的核磁共振最新研究进展
更新日期:2021-05-26     浏览次数:165
核心提示:摘要核磁共振作为一种重要的谱学研究手段,在高温超导体的机理研究中发挥了极其重要的作用.近年来,随着新型铁基高温超导材料家族的发现以及基于强磁场

摘要 核磁共振作为一种重要的谱学研究手段,在高温超导体的机理研究中发挥了极其重要的作用.近年来,随着新型铁基高温超导材料家族的发现以及基于强磁场下核磁共振技术的发展,相关高温超导方面的核磁共振研究也有了许多新的进展,这些工作对高温超导电性的机理研究起到了积极的推动作用.本文将就核磁共振技术在铜氧化物高温超导体和铁基高温超导体这两大类高温超导材料中的若干最新研究进展进行一个有针对性的概述和梳理,希望对后续高温超导电性的机理研究以及材料探索能起到一些启示作用. As an important spectroscopy research technique,nuclear magnetic resonance(NMR)has played an important role in exploring the mechanism of high-temperature superconducting pairing.In the past decade,due to the discovery of ironbased high-temperature superconductors and the development of high magnetic field NMR technology,NMR studies on high-temperature superconductivity have made great progress,which has strongly promoted the research on the pairing mechanism.In this review,we will give an overview of the latest research progress of NMR studies on two hightemperature superconducting families,copper-oxide high-temperature superconductors and iron-based high-temperature superconductors.We hope this can provide some insights and stimulate more theoretical and experimental researches on understanding the high-Tc superconductors.
作者 周睿 吴涛 ZHOU Rui;WU Tao(Beijing National Laboratory for Condensed Matter Physics,Institute of Physics,Chinese Academy of Sciences,Beijing 100190,China;Hefei National Laboratory for Physical Sciences at the Microscale,University of Science and Technology of China,Hefei 230026,China;CAS Key Laboratory of Strongly-coupled Quantum Matter Physics,Department of Physics,University of Science and Technology of China,Hefei 230026,China;Songshan Lake Materials Laboratory,Dongguan 523808,China)
出处 《中国科学:物理学、力学、天文学》 CSCD 北大核心 2021年第4期136-183,共48页 Scientia Sinica:Physica,Mechanica & Astronomica
基金 科技部国家重点研发计划(编号:2016YFA0300201,2017YFA0303000,2017YFA0302904,2016YFA0300502) 国家自然科学基金(编号:11522434,11974405,11674377,11634015) 中国科学院战略性先导科技专项(B类)(编号:XDB25000000,XDB33010100)资助。
关键词 高温超导体 核磁共振 铁基超导体 铜氧化物超导体 强磁场 high-Tc superconductors nuclear magnetic resonance iron-based supercoductors copper-oxide superconductors high magnetic field