掺杂有机超导体 κ-(BEDT-TTF)4Hg2.89Br8中的磁性和自旋流动性

IF 1.5 4区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Hiroshi Oike, Hiromi Taniguchi, Kazuya Miyagawa, Kazushi Kanoda
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引用次数: 0

摘要

从有机导体中发现超导现象至今已有 40 多年,科学家们对有机超导体的看法也随着时间的推移而发生了变化。首先,有机导体表现出超导性这一事实本身就是一件新鲜事,随后,人们发现超导性的背后是电子关联物理学,而这一直是整个凝聚态物理学的焦点。在相关物理学显著发展的同时,有机导体的独特特性,如各种晶格几何形状和高度可压缩的特点,导致了基本原理的阐明和新现象的发现,如带宽控制的莫特跃迁和可能的量子自旋液体。然而,大多数有机超导体都有相称的带填充,如二分之一或四分之一,而无机超导体,如高碲铜酸盐和铁基超导体,往往是在带填充变化的情况下进行研究的。因此,有机超导体与无机超导体之间的物理联系一直悬而未决。在这篇综述文章中,我们重点研究了层状非原子序数超导体κ-(BEDT-TTF)4Hg2.89Br8,它在有机导体中是一种特殊的存在,非原子序数可作为半填充带的掺杂剂。此外,电子的强相关性和几何上受挫的三角形晶格使该体系表现出莫特性、自旋流动性和超导性等相关电子物理学的关键概念所涉及的独特现象。本综述将总结我们从κ-(BEDT-TTF)4Hg2.89Br8 的压力研究中学到的知识,以及这些发现与无机材料中广泛研究的问题之间的关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mottness and Spin Liquidity in a Doped Organic Superconductor κ-(BEDT-TTF)4Hg2.89Br8
It has been more than 40 years since superconductivity was discovered in organic conductors, and the way scientists view organic superconductors has changed over time. First, the fact that organic conductors exhibit superconductivity was a novelty in itself, and subsequently, it was shown that behind the superconductivity is the physics of electron correlation, which has been a focus in condensed matter physics at large. Amid the marked development of correlation physics, the unique characteristics of organic conductors, e.g., a variety of lattice geometries and the highly compressible feature, led to the elucidation of fundamental principles and the finding of new phenomena, such as bandwidth-controlled Mott transitions and possible quantum spin liquids. However, most organic superconductors have commensurate band fillings, such as one-half or one-quarter, whereas inorganic superconductors, such as high-Tc cuprates and iron-based superconductors, have often been investigated under the variation of their band fillings. Thus, the physical linkage between organic and inorganic superconductors has remained unresolved. In this review article, we focus on the layered nonstoichiometric superconductor, κ-(BEDT-TTF)4Hg2.89Br8, which is exceptional among organic conductors in that the nonstoichiometry serves as doping to a half-filled band. Moreover, the strong correlation of electrons and a geometrically frustrated triangular lattice make this system exhibit the unique phenomena involved in Mottness, spin liquidity, and superconductivity, which are key concepts of correlated electron physics. This review will summarize what we learned from the pressure study of κ-(BEDT-TTF)4Hg2.89Br8 and how these findings relate to the extensively studied issues in inorganic materials.
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来源期刊
CiteScore
3.40
自引率
17.60%
发文量
325
审稿时长
3 months
期刊介绍: The papers published in JPSJ should treat fundamental and novel problems of physics scientifically and logically, and contribute to the development in the understanding of physics. The concrete objects are listed below. Subjects Covered JPSJ covers all the fields of physics including (but not restricted to) Elementary particles and fields Nuclear physics Atomic and Molecular Physics Fluid Dynamics Plasma physics Physics of Condensed Matter Metal, Superconductor, Semiconductor, Magnetic Materials, Dielectric Materials Physics of Nanoscale Materials Optics and Quantum Electronics Physics of Complex Systems Mathematical Physics Chemical physics Biophysics Geophysics Astrophysics.
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