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Mottness and Spin Liquidity in a Doped Organic Superconductor κ-(BEDT-TTF)4Hg2.89Br8

超导电性 兴奋剂 材料科学 凝聚态物理 有机超导体 自旋(空气动力学) 物理 热力学
作者
Hiroshi Ôike,Hiromi Taniguchi,Kazuya Miyagawa,Kazushi Kanoda
出处
期刊:Journal of the Physical Society of Japan [Physical Society of Japan]
卷期号:93 (4) 被引量:1
标识
DOI:10.7566/jpsj.93.042001
摘要

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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