含氨/有机分子插层fese超导体的研究进展

IF 8.6 2区 化学 Q1 Chemistry
Han-Shu Xu, Shusheng Wu, Hui Zheng, Ruotong Yin, Yuanji Li, Xiaoxiong Wang, Kaibin Tang
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引用次数: 4

摘要

作为铁基超导体的重要组成部分,铁基超导体已成为凝聚态物理研究的热点。这种超导材料的探索和制备是研究其物理性质的基础。在各种碱土/碱土/稀土金属的帮助下,不同种类的氨/有机分子被嵌入到FeSe层中,形成大量具有不同结构和不同层间距的FeSe基超导体。金属阳离子可以有效地为超导FeSe层提供载流子,从而显著提高超导转变温度。有机分子的取向通常在结构修饰中起重要作用,并可用于微调超导性。本文介绍了近年来发现的几种典型的含氨/有机分子插层的FeSe基超导体的晶体结构和超导性能,并简要总结了FeSe层间距和超导转变温度的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Research Progress of FeSe-based Superconductors Containing Ammonia/Organic Molecules Intercalation

As an important part of Fe-based superconductors, FeSe-based superconductors have become a hot field in condensed matter physics. The exploration and preparation of such superconducting materials form the basis of studying their physical properties. With the help of various alkali/alkaline-earth/rare-earth metals, different kinds of ammonia/organic molecules have been intercalated into the FeSe layer to form a large number of FeSe-based superconductors with diverse structures and different layer spacing. Metal cations can effectively provide carriers to the superconducting FeSe layer, thus significantly increasing the superconducting transition temperature. The orientation of organic molecules often plays an important role in structural modification and can be used to fine-tune superconductivity. This review introduces the crystal structures and superconducting properties of several typical FeSe-based superconductors containing ammonia/organic molecules intercalation discovered in recent years, and the effects of FeSe layer spacing and superconducting transition temperature are briefly summarized.

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来源期刊
Topics in Current Chemistry
Topics in Current Chemistry 化学-化学综合
CiteScore
11.70
自引率
1.20%
发文量
0
审稿时长
6-12 weeks
期刊介绍: Topics in Current Chemistry provides in-depth analyses and forward-thinking perspectives on the latest advancements in chemical research. This renowned journal encompasses various domains within chemical science and their intersections with biology, medicine, physics, and materials science. Each collection within the journal aims to offer a comprehensive understanding, accessible to both academic and industrial readers, of emerging research in an area that captivates a broader scientific community. In essence, Topics in Current Chemistry illuminates cutting-edge chemical research, fosters interdisciplinary collaboration, and facilitates knowledge-sharing among diverse scientific audiences.
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