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重费米子材料CeCoIn5超导态的唯象理论 被引量:1

A phenomenological theory of heavy fermion superconductivity in CeCoIn_5
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摘要 重费米子超导体是最早发现的非常规超导体,具有丰富的超导量子现象.理解重费米子超导配对的微观起源能够启发非常规超导的机理研究和新型超导体的实验探索.本文简要介绍了近年来在重费米子超导实验和理论上的最新进展,利用量子临界自旋涨落的唯象模型,结合Eliashberg理论计算了CeCoIn_5的超导性质,得到了具有dx^2-y^2波对称性的超导能隙,符合实验结果.在此基础上提出了计算超导转变温度T_c的简化公式,结合二流体理论解释了CeCoIn_5和CeRhIn_5中T_c随压力的演化.这一结果为发展重费米子超导的唯象理论提供了新的思路. Unconventional superconductivity was first discovered in heavy fermion materials which exhibit a rich variety of superconducting quantum phenomena. Understanding the microscopic origin of heavy fermion superconductivity will help us understand the nature of high-temperature superconductivity and explore new class of unconventional superconductors. In this article, we give a brief introduction to the recent theoretical and experimental studies on heavy fermion superconductors. In particular, it has been shown that previous understandings of the pairing mechanism based on oversimplified single-band model calculations may not explain the recent experimental observations of the superconducting gap symmetry and therefore need to be revisited. For example, the heavy fermion superconductors CeCu2Si2 and UBe(13), which have long been believed to have nodal superconducting gap structures for over three decades, are now found to exhibit nodeless behaviors in many new experiments. While these may be partially explained by using realistic band structures in combination with random phase approximation(RPA) for the dynamic susceptibility, we point out that for strongly correlated systems such as heavy fermions, RPA fails to capture the true behavior of quantum critical fluctuations which act as the pairing force for the unconventional superconductivity. We argue that there are three major issues that need to be taken into account in order to develop a good understanding of the heavy fermion superconductivity:(1) the strong electronic correlations and the two-fluid behavior of the f electrons;(2) the quantum critical nature of the superconducting pairing force that cannot be obtained based on RPA;(3) the multi-band or multi-orbital properties that rely on real materials and may be crucial for the gap structures. Following these considerations, we propose a new framework based on the strong-coupling Eliashberg theory that combines previous phenomenological theory of the spin-fluctuation-induced pairing mechanism and realistic band structures from either experimental measurements or first-principles calculations. As an example, we apply our model to the prototype heavy fermion superconductors CeCoIn5 and CeRhIn5. By using a single-band model derived from the scanning tunneling spectroscopy, we solve the linearized Eliashberg equation and produce the correct d-wave superconducting gap structure, in agreement with experimental observations. We further predict a simple formula for the superconducting transition temperature Tc as a function of the pairing strength and the spin fluctuation energy. We then extend the formula to general cases and use the two-fluid prediction on the heavy electron density of states to calculate the pressure-variation of Tc. Our results agree well with experiment and explain the dome structure of Tc. For multi-band systems, we have studied the superconductivity in CeC u2 Si2. In contrast to previous calculations that predict either d-wave or nodal s-wave gap, we found that the inter-band scattering plays an essential role and may cause a nodeless gap structure. This work is still under progress. We believe that the success of the new framework suggests that it may provide a promising basis for treating the above issues and will help our understanding of the properties of heavy fermion superconductivity. In the future, we hope to extend our study to other heavy fermion superconductors and take into consideration the detailed orbital characters and the dual nature of f electrons. The latter would possibly require a reformulation of the Eliashberg equations.
作者 李宇 杨义峰
出处 《科学通报》 EI CAS CSCD 北大核心 2017年第34期4068-4076,共9页 Chinese Science Bulletin
基金 国家优秀青年科学基金(11522435) 国家重点研发计划(2017YFA0303103)资助
关键词 重费米子超导 二流体理论 Eliashberg理论 配对对称性 heavy fermion superconductivity, two-fluid theory, Eliashberg theory, pairing symmetry
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