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Slow dynamics of electrons at a metal–Mott insulator boundary in an organic system with disorder

机译:在有序的有机系统中金属-莫特绝缘子边界处电子的慢动力学

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摘要

The Mott transition—a metal-insulator transition caused by repulsive Coulomb interactions between electrons—is a central issue in condensed matter physics because it is the mother earth of various attractive phenomena. Outstanding examples are high–Tc (critical temperature) cuprates and manganites exhibiting colossal magnetoresistance. Furthermore, spin liquid states, which are quantum-fluctuation–driven disordered ground states in antiferromagnets, have recently been found in magnetic systems very near the Mott transition. To date, intensive studies on the Mott transition have been conducted and appear to have established a nearly complete framework for understanding the Mott transition. We found an unknown type of Mott transition in an organic spin liquid material with a slightly disordered lattice. Around the Mott transition region of this material under pressure, nuclear magnetic resonance experiments capture the emergence of slow electronic fluctuations of the order of kilohertz or lower, which is not expected in the conventional Mott transition that appears as a clear first-order transition at low temperatures. We suggest that they are due to the unconventional metal-insulator fluctuations emerging around the disordered Mott transition in analogy to the slowly fluctuating spin phase, or Griffiths phase, realized in Ising spin systems with disordered lattices.
机译:莫特跃迁(一种由电子之间的排斥性库仑相互作用引起的金属-绝缘体跃迁)是凝聚态物理中的一个核心问题,因为它是各种引诱现象的母体。杰出的例子是具有高磁阻的高Tc(临界温度)铜酸盐和锰铁矿。此外,最近在自莫特跃迁附近的磁系统中发现了自旋液态,这是反铁磁体中由量子涨落驱动的无序基态。迄今为止,已经对Mott过渡进行了深入研究,似乎为理解Mott过渡建立了几乎完整的框架。我们在具有轻微无序晶格的有机自旋液体材料中发现了未知类型的Mott跃迁。在压力下,在这种材料的莫特跃迁区域周围,核磁共振实验捕获了几千赫兹或更低数量级的缓慢电子波动的出现,这在常规莫特跃迁中是不希望的,传统的莫特跃迁在低温下表现为明显的一阶跃迁温度。我们认为,这是由于在无序Mott跃迁周围出现了非常规的金属-绝缘体波动,类似于在具有无序晶格的Ising自旋系统中实现的缓慢波动的自旋相或格里菲斯相。

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