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Quantum-disordered state of magnetic and electric dipoles in an organic Mott system

机译:有机Mott系统中电磁偶极子的量子无序状态

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摘要

Strongly enhanced quantum fluctuations often lead to a rich variety of quantum-disordered states. Developing approaches to enhance quantum fluctuations may open paths to realize even more fascinating quantum states. Here, we demonstrate that a coupling of localized spins with the zero-point motion of hydrogen atoms, that is, proton fluctuations in a hydrogen-bonded organic Mott insulator provides a different class of quantum spin liquids (QSLs). We find that divergent dielectric behavior associated with the approach to hydrogen-bond order is suppressed by the quantum proton fluctuations, resulting in a quantum paraelectric (QPE) state. Furthermore, our thermal-transport measurements reveal that a QSL state with gapless spin excitations rapidly emerges upon entering the QPE state. These findings indicate that the quantum proton fluctuations give rise to a QSL—a quantum-disordered state of magnetic and electric dipoles—through the coupling between the electron and proton degrees of freedom.
机译:强烈增强的量子涨落通常会导致多种多样的量子无序状态。开发增强量子涨落的方法可能为实现更迷人的量子态开辟道路。在这里,我们证明了局部自旋与氢原子的零点运动的耦合,即氢键键合的有机Mott绝缘子中的质子涨落提供了另一类量子自旋液体(QSL)。我们发现,与质子氢键阶跃相关联的发散介电行为被量子质子波动所抑制,从而导致量子顺电(QPE)状态。此外,我们的热传输测量结果显示,进入QPE状态后,具有无间隙自旋激发的QSL状态迅速出现。这些发现表明,量子质子涨落通过电子和质子自由度之间的耦合而产生QSL(一种磁和电偶极子的量子无序状态)。

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