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Etude des transitions de Peierls dans les systemes unidimensionnels et quasi-unidimensionnels.

机译:研究一维和准一维系统中的Peierls跃迁。

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摘要

We studied the structural instabilities of one-dimensional (1D) and quasi-one-dimensional (Q1D) electron-phonon systems at low temperature through two models, SuSchrieffer-Heeger (SSH) and molecular crystal (CM) with and without spin. The phase diagrams are obtained using a Kadanoff-Wilson renormalization group approach (GR).;We have extended this study to the quarter-filled Q1D Peierls systems at finite temperature. Within the SSH model, an unconventional superconducting phase with spin singlet symmetry SS-s emerges at low temperature when the deviation to the perfect nesting of the Fermi surface is strong enough. Peierls-SS transition is characterized by the presence of a quantum critical point at low frequency and by a power law behavior of the transition temperature as a function of frequency with an exponent identical to one of 1D system. This exponent which universality has been verified contrasts with the BCS result. Coulomb interactions have been introduced through the study of the extended SSH-Hubbard model. The extension of this work to half-filled SSH and CM cases was also performed. .;Keywords: one-dimensional and quasi-one-dimensional electron-phonon systems, Kadanoff-Wilson renormalization group, Su-Schrieffer-Heeger, molecular crystal, Holstein-Hubbard, stiffness factor, Peierls stat, Luttinger liquid, unconventional superconductivity, quantum-classical crossover, Kosterlitz-Thouless transition, quantum critical point.;For the 1D half-filled system the study of the frequency dependence of the electronic gap allowed us to connect continuously the two limits, adiabatic and non-adiabatic. The Peierls and Cooper channels interference and the quantum fluctuations reduce the gap. A regime change occurs when the frequency becomes of the order of mean field gap, marking a quantum-classical crossover that is the Kosterlitz-Thouless type. At this level, the effective coupling behaves in power law function on frequency. For the case with spin, a gapped Peierls state is maintained in the non-adiabatic limit, while for the case without spin, the system transits to ungapped disordered state, namely the Luttinger liquid stat (LL). For the SSH model without spin, the GR confirms the existence of a threshold phonon coupling beyond which the gap is restored. The study of the rigidities of the two models without spin allowed us to trace the main features of the LL state predicted by the bosonization method. The study of the Holstein-Hubbard model has allowed us not only to reproduce the phase diagrams already obtained by the Monte Carlo method, but to highlight two additional phases, namely, free fermions phase and the bond charge-density-wave phase.
机译:我们通过具有自旋和不具有自旋的两个模型,研究了低温下的一维(1D)和准一维(Q1D)电子声子系统的结构不稳定性,该模型包括SuSchrieffer-Heeger(SSH)和分子晶体(CM)。使用Kadanoff-Wilson重归一化组方法(GR)获得相图。;我们已将这项研究扩展到四分之一充满温度的Q1D Peierls系统。在SSH模型中,当与费米表面的完美嵌套的偏差足够强时,在低温下会出现具有自旋单重态对称SS-s的非常规超导相。 Peierls-SS跃迁的特征是在低频处存在一个量子临界点,并且跃迁温度的幂律行为是频率的函数,其指数与一维系统之一相同。该通用性已被验证的指数与BCS结果相反。通过研究扩展的SSH-Hubbard模型,引入了库仑相互作用。这项工作也扩展到半满的SSH和CM案例。关键字:一维和准一维电子声子系统,Kadanoff-Wilson重正化组,Su-Schrieffer-Heeger,分子晶体,Holstein-Hubbard,刚度因子,Peierls stat,Luttinger液体,非常规超导,量子-经典交叉,Kosterlitz-Thouless跃迁,量子临界点。;对于一维半填充系统,对电子间隙频率依赖性的研究使我们能够连续地连接绝热和非绝热这两个极限。 Peierls和Cooper通道的干扰和量子涨落减小了间隙。当频率变为平均场隙量级时,就会发生状态变化,这标志着Kosterlitz-Thouless类型的量子经典交叉。在这个水平上,有效耦合在频率上表现为幂律函数。对于有自旋的情况,有间隙的Peierls状态保持在非绝热极限,而对于无自旋的情况,系统转换为无空隙的无序状态,即Luttinger液体状态(LL)。对于没有自旋的SSH模型,GR确认存在阈值声子耦合,超过该阈值声子可恢复间隙。对两个模型的自旋刚度的研究使得我们能够追踪通过玻化法预测的LL状态的主要特征。对Holstein-Hubbard模型的研究不仅使我们可以重现已经通过蒙特卡洛方法获得的相图,而且可以突出显示另外两个相,即自由费米子相和键电荷密度波相。

著录项

  • 作者

    Bakrim, Hassan.;

  • 作者单位

    Universite de Sherbrooke (Canada).;

  • 授予单位 Universite de Sherbrooke (Canada).;
  • 学科 Physics Low Temperature.;Physics Theory.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 141 p.
  • 总页数 141
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:37:23

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