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Bond patterns and charge-order amplitude in quarter-filled charge-transfer solids

机译:四分之一填充电荷转移固体中的键模式和电荷阶跃幅度

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摘要

Most quasi-one-dimensional (quasi-ID) quarter-filled organic charge-transfer solids (CTS) with insulating ground states have two thermodynamic transitions: a high-temperature metal-insulator transition followed by a low-temperature magnetic transition. This sequence of transitions can be understood within the ID Peierls-extended Hubbard (PEH) model. However, in some quasi-lD CTS both transitions occur simultaneously in a direct metal to spin-gapped insulator transition. In this second class of materials the organic stack bond distortion pattern does not follow the pattern of a second dimerization of a dimer lattice. These materials also display charge ordering of a large amplitude below the transition. Using quantum Monte Carlo methods we show that the same PEH model can be used to understand both classes of materials, however, within different parameter regions. We discuss the relevance of our work to experiments on several quarter-filled conductors, focusing in particular on the materials (EDO-TTF)_2X and (DMEDO-TTF)_2X.
机译:大多数具有绝缘基态的准一维(quad-id)填充有机电荷转移固体(CTS)具有两个热力学转变:高温金属-绝缘子转变和低温磁转变。可以在ID Peierls扩展的Hubbard(PEH)模型中理解此转换序列。但是,在某些准ID CTS中,两个过渡同时发生在直接金属到自旋间隙绝缘子的过渡中。在第二类材料中,有机堆叠键变形图案不遵循二聚体晶格的第二个二聚化的图案。这些材料还显示出跃迁以下的大幅度电荷排序。使用量子蒙特卡洛方法,我们证明了相同的PEH模型可用于理解这两类材料,但是在不同的参数区域内。我们讨论了我们的工作与在几个四分之一填充导体上进行实验的相关性,特别是材料(EDO-TTF)_2X和(DMEDO-TTF)_2X。

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  • 来源
    《Physical Review. B, Condensed Matter》 |2017年第12期|125114.1-125114.7|共7页
  • 作者单位

    Department of Physics and Astronomy and HPC~2 Center for Computational Sciences, Mississippi State University, Mississippi State, Mississippi 39762, USA;

    Department of Physics and Astronomy and HPC~2 Center for Computational Sciences, Mississippi State University, Mississippi State, Mississippi 39762, USA;

    Department of Physics, University of Arizona, Tucson, Arizona 85721, USA;

    Department of Physics, University of Arizona, Tucson, Arizona 85721, USA ,Department of Chemistry, University of Arizona, Tucson, Arizona 85721, USA;

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