论文标题

$κ$ - 相机有机电荷转移盐的通用型号的成分:评论

Ingredients for Generalized Models of $κ$-Phase Organic Charge-Transfer Salts: A Review

论文作者

Riedl, Kira, Gati, Elena, Valenti, Roser

论文摘要

有机费用转移盐$κ$ - (bedt-ttf)$ _ 2x $和$κ$ - (BETS)$ _ 2x $的家族已证明是对沮丧的Mott绝缘子物理学进行调查的强大游乐场。这些材料已被归因于模型特征,因为有机分子的二聚化允许将这些材料映射到单个带Hubbard模型上,其中二聚体位于各向异性三角形晶格上。通过更改无机单元$ x $或施加物理压力,可以改变三角形晶格的相关强度和各向异性。这导致了各种外来现象的发现,包括量子自旋液态,在与莫特金属绝缘体过渡的附近和非常规的超导性相邻的近距离磁性阶。尽管可以在三角形晶格上的这种有效的单频哈伯德模型中描述其中的许多现象,但近年来,这种简化的描述不足以捕获所有观察到的磁性和电子特性。相关的广义模型的成分包括但不限于自旋轨道耦合,二聚体内电荷和自由度的自由度,电子晶体耦合以及无序效应。在这里,我们回顾了选择的理论和实验发现,这些发现清楚地证明了其相关性。同时,我们概述了这些方面不仅与这类有机电荷转移盐有关,而且在其他类别的无机性强相关的电子系统中也受到了越来越多的关注。这加强了模型特征,即从理论和实验性的角度来看,$κ$ - $ - $ - $ - $ - $ - $ - $ - $ - $ - $ - $ - $之间的有机电荷转移盐具有理解和发现强相关的电子系统中的新现象。

The families of organic charge-transfer salts $κ$-(BEDT-TTF)$_2X$ and $κ$-(BETS)$_2X$ have proven to serve as a powerful playground for the investigation of the physics of frustrated Mott insulators. These materials have been ascribed model character, since dimerization of the organic molecules allows to map these materials onto a single band Hubbard model, in which the dimers reside on an anisotropic triangular lattice. By changing the inorganic unit $X$ or applying physical pressure, the correlation strength and anisotropy of the triangular lattice can be varied. This has lead to the discovery of a variety of exotic phenomena, including quantum spin liquid states, a plethora of long-range magnetic orders in proximity to a Mott metal-insulator transition, and unconventional superconductivity. While many of these phenomena can be described within this effective one-band Hubbard model on a triangular lattice, it became evident in recent years that this simplified description is insufficient to capture all observed magnetic and electronic properties. The ingredients for generalized models that are relevant include, but are not limited to, spin-orbit coupling, intra-dimer charge and spin degrees of freedom, electron-lattice coupling, as well as disorder effects. Here, we review selected theoretical and experimental discoveries that clearly demonstrate the relevance thereof. At the same time, we outline that these aspects are not only relevant to this class of organic charge-transfer salts, but are also receiving increasing attention in other classes of inorganic strongly correlated electron systems. This reinforces the model character that the $κ$-phase organic charge-transfer salts have for understanding and discovering novel phenomena in strongly correlated electron systems from a theoretical and experimental point of view.

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