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首页> 外文期刊>Physical Review, B. Condensed Matter >Lattice and magnetic instabilities near the neutral-ionic phase transition of the one-dimensional extended Hubbard model with alternating potentials in the thermodynamic limit - art. no. 205105
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Lattice and magnetic instabilities near the neutral-ionic phase transition of the one-dimensional extended Hubbard model with alternating potentials in the thermodynamic limit - art. no. 205105

机译:一维扩展哈伯德模型中性离子相变附近的晶格和磁不稳定,在热力学极限中具有交变电势没有。 205105

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The effects of dimerization causing the alternation of transfer integrals on the neutral-ionic phase transition are studied in the one-dimensional extended Hubbard model with alternating potentials at half filling. The finite-temperature density-matrix renormalization-group method is used to treat the thermodynamic limit. In the ionic phase, the free-energy gain is proportional to delta(4/3) with delta being the degree of dimerization even near the phase boundary at low temperatures. In the neutral phase, the free-energy gain is quadratic for small transfer integral far from the phase boundary, but it is nonlinearly enhanced near the boundary. Large transfer integrals make the gain faster than delta(2), so that they facilitate dimerization. The dimerization in the neutral phase increases the ionicity and lowers the spin excitation energies. These lattice effects are in contrast to the effects of a staggered magnetic field. The relevance of these results to recently observed dimerization in the neutral phase of ClMePD-DMeDCNQI is discussed. [References: 28]
机译:在一维扩展Hubbard模型中研究了二聚化导致转移积分交替对中性离子相变的影响,该模型具有半填充时的交替电势。使用有限温度密度矩阵重归一化组方法来处理热力学极限。在离子相中,自由能增益与delta(4/3)成正比,其中delta是即使在低温下在相边界附近,二聚度。在中性相中,对于远离相边界的小传递积分,自由能增益为二次方,但在边界附近非线性增强。大的传递积分使增益比delta(2)快,因此它们便于二聚化。中性相中的二聚化增加了离子性并降低了自旋激发能。这些晶格效应与交错磁场的效应相反。讨论了这些结果与最近在ClMePD-DMeDCNQI中性相中观察到的二聚化的相关性。 [参考:28]

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