论文标题
Kitaev旋转液体的材料设计以外
Materials design of Kitaev spin liquids beyond the Jackeli-Khaliullin mechanism
论文作者
论文摘要
Kitaev旋转液体提供了一个罕见的例子,以超过一个维度为单位。它作为具有键依赖性各向异性相互作用的Kitaev自旋模型的确切基态。可以通过特定电子构型和晶格几何形状的自旋轨道耦合和电子相关的协同作用来产生特殊的相互作用,这被称为jackeli-khaliullin机构。基于这种机制,在过去十年中,基塔夫旋转液体的实质化已经激烈,但是候选人仍然主要限于$ 4D $ - 和$ 5D $ -ELECTRON化合物,包括阳离子,包括具有低旋转$ d^5 $ d $ d $ electration的阳离子,例如ir $ $ $^{4+} $ $^{4+} $ $ $ $^$^$^{3+}。在这里,我们讨论了将物质观点扩展到jackeli-khaliullin机制之外的最新努力,通过仔细重新审查两个必需品,即$ j _ {\ rm eff} = 1/2 $ doublet和交换过程之间的量子干扰,不仅是$ d $ - 而且对于$ d $ - 而且是$ f $ -Electron Systems。我们提供了三个示例:与高旋转$ d^7 $电子配置,pr $^{4+} $一起使用的系统,以及$ f^1 $ -Electron配置,以及晶格结构的极性不对称。特别是,后两者很吸引人,因为它们可能意识到抗磁磁相互作用,与现有候选者的铁磁相比。该部分概述将刺激基塔夫自旋液体及其拓扑特性的进一步探索,这是由于分数激发引起的。
The Kitaev spin liquid provides a rare example of well-established quantum spin liquids in more than one dimension. It is obtained as the exact ground state of the Kitaev spin model with bond-dependent anisotropic interactions. The peculiar interactions can be yielded by the synergy of spin-orbit coupling and electron correlations for specific electron configuration and lattice geometry, which is known as the Jackeli-Khaliullin mechanism. Based on this mechanism, there has been a fierce race for the materialization of the Kitaev spin liquid over the last decade, but the candidates have been still limited mostly to $4d$- and $5d$-electron compounds including cations with the low-spin $d^5$ electron configuration, such as Ir$^{4+}$ and Ru$^{3+}$. Here we discuss recent efforts to extend the material perspective beyond the Jackeli-Khaliullin mechanism, by carefully reexamining the two requisites, formation of the $j_{\rm eff}=1/2$ doublet and quantum interference between the exchange processes, for not only $d$- but also $f$-electron systems. We present three examples: the systems including Co$^{2+}$ and Ni$^{3+}$ with the high-spin $d^7$ electron configuration, Pr$^{4+}$ with the $f^1$-electron configuration, and polar asymmetry in the lattice structure. In particular, the latter two are intriguing since they may realize the antiferromagnetic Kitaev interactions, in contrast to the ferromagnetic ones in the existing candidates. This partial overview would stimulate further material exploration of the Kitaev spin liquids and its topological properties due to fractional excitations.