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Critical spin liquid versus valence-bond glass in a triangular-lattice organic antiferromagnet

机译:三角形晶格有机反铁磁体中的临界自旋液体与价键玻璃

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摘要

In the quest for materials with unconventional quantum phases, the organic triangular-lattice antiferromagnet κ-(ET)2Cu2(CN)3 has been extensively discussed as a quantum spin liquid (QSL) candidate. The description of its low temperature properties has become, however, a particularly challenging task. Recently, an intriguing quantum critical behaviour was suggested from low-temperature magnetic torque experiments. Here we highlight significant deviations of the experimental observations from a quantum critical scenario by performing a microscopic analysis of all anisotropic contributions, including Dzyaloshinskii–Moriya and multi-spin scalar chiral interactions. Instead, we show that disorder-induced spin defects provide a comprehensive explanation of the low-temperature properties. These spins are attributed to valence bond defects that emerge spontaneously as the QSL enters a valence-bond glass phase at low temperature. This theoretical treatment is applicable to a general class of frustrated magnetic systems and has important implications for the interpretation of magnetic torque, nuclear magnetic resonance, thermal transport and thermodynamic experiments.
机译:在寻求具有非常规量子相的材料时,有机三角晶格反铁磁体κ-(ET)2Cu2(CN)3作为量子自旋液体(QSL)候选物已被广泛讨论。然而,对其低温性能的描述已成为一项特别具有挑战性的任务。最近,从低温磁转矩实验中提出了一种有趣的量子临界行为。在这里,我们通过对所有各向异性贡献(包括Dzyaloshinskii–Moriya和多自旋标量手性相互作用)进行微观分析,突出了实验观察结果与量子临界情况的显着偏差。相反,我们表明无序诱发的自旋缺陷提供了低温性能的全面解释。这些自旋归因于当QSL在低温下进入价键玻璃相时自发出现的价键缺陷。这种理论处理适用于一般类别的受挫磁系统,并且对磁转矩,核磁共振,热传输和热力学实验的解释具有重要意义。

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