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Orbital-selective Mott phases of a one-dimensional three-orbital Hubbard model studied using computational techniques

机译:一维三轨道哈伯德模型的轨道选择莫特相位使用计算技术研究

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A recently introduced one-dimensional three-orbital Hubbard model displays orbital-selective Mott phases with exotic spin arrangements such as spin block states [J. Rincon et al., Phys. Rev. Lett. 112, 106405 (2014)]. In this publication we show that the constrained-path quantum Monte Carlo (CPQMC) technique can accurately reproduce the phase diagram of this multiorbital one-dimensional model, paving the way to future CPQMC studies in systems with more challenging geometries, such as ladders and planes. The success of this approach relies on using the Hartree-Fock technique to prepare the trial states needed in CPQMC. We also study a simplified version of the model where the pair-hopping term is neglected and the Hund coupling is restricted to its Ising component. The corresponding phase diagrams are shown to be only mildly affected by the absence of these technically difficult-to-implement terms. This is confirmed by additional density matrix renormalization group and determinant quantum Monte Carlo calculations carried out for the same simplified model, with the latter displaying only mild fermion sign problems. We conclude that these methods are able to capture quantitatively the rich physics of the several orbital-selective Mott phases (OSMP) displayed by this model, thus enabling computational studies of the OSMP regime in higher dimensions, beyond static or dynamic mean-field approximations.
机译:最近引入的一维三轨道哈伯德模型显示了具有自旋排列(例如自旋块态)的轨道选择性莫特相位。 Rincon等,Phys。牧师112,106405(2014)]。在本出版物中,我们证明了约束路径量子蒙特卡洛(CPQMC)技术可以准确地重现此多轨道一维模型的相图,从而为将来在具有更挑战性的几何结构(例如阶梯和平面)的系统中进行CPQMC研究铺平了道路。 。这种方法的成功取决于使用Hartree-Fock技术准备CPQMC所需的试用状态。我们还研究了该模型的简化版本,其中忽略了跳对项,而Hund耦合仅限于其Ising分量。相应的相图显示仅受缺少这些技术上难以实现的术语的影响很小。这可以通过对同一简化模型执行的其他密度矩阵重归一化组和行列式量子蒙特卡洛计算得到证实,后者仅显示轻度的费米子征问题。我们得出的结论是,这些方法能够定量捕获此模型显示的几个轨道选择莫特相位(OSMP)的丰富物理特性,从而使OSMP机制的计算研究超出了静态或动态平均场近似。

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