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Dynamical mean field theory simulations with the adaptive sampling configuration interaction method

机译:具有自适应采样配置交互方法的动态平均场理论模拟

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摘要

In the pursuit of accurate descriptions of strongly correlated quantum many-body systems, dynamical mean field theory (DMFT) has been an invaluable tool for elucidating the spectral properties and quantum phases of both phenomenological models and ab initio descriptions of real materials. Key to the DMFT process is the self-consistent map of the original system into an Anderson impurity model, the ground state of which is computed using an impurity solver. The power of the method is thus limited by the complexity of the impurity model the solver can handle. Simulating realistic systems generally requires many correlated sites. By adapting the recently proposed adaptive sampling configuration interaction (ASCI) method as an impurity solver, we enable much more efficient zero-temperature DMFT simulations. The key feature of the ASCI method is that it selects only the most relevant Hilbert space degrees of freedom to describe the ground state. This reduces the numerical complexity of the calculation, which will allow us to pursue future DMFT simulations with more correlated impurity sites than in previous works. Here, we present the ASCI-DMFT method and example calculations on the one- and two-dimensional Hubbard models that exemplify its efficient convergence and timing properties. We show that the ASCI approach is several orders of magnitude faster than the current best published ground-state DMFT simulations, which allows us to study the bath discretization error in simulations with small clusters, as well as to address cluster sizes beyond the current state of the art. Our approach can also be adapted for other embedding methods such as density matrix embedding theory and self-energy embedding theory.
机译:在追求精确描述的强烈相关量子的量子系统中,动态平均场理论(DMFT)是一种可宝贵的工具,用于阐明现象学模型和真实材料的AB初始描述的光谱性能和量子相。 DMFT过程的关键是原始系统的自我一致地图,进入Anderson杂质模型,使用杂质求解器计算的地位。因此,该方法的功率受到求解器可以处理的杂质模型的复杂性的限制。模拟现实系统通常需要许多相关位点。通过将最近提出的自适应采样配置交互(ASCI)方法作为杂质求解器,我们实现了更有效的零温度DMFT模拟。 ASCI方法的关键特征是它仅选择最相关的Hilbert空间自由度来描述地面状态。这降低了计算的数值复杂性,这将使我们能够追求未来的DMFT模拟,其杂质位点比以前的作品更相关。在这里,我们介绍了一个ASCI-DMFT方法和一个二维Hubbard模型的示例计算,示例了其有效的收敛和时序属性。我们表明,ASCI方法比当前最佳发布的地态DMFT模拟速度快几个数量级,这使我们能够在使用小集群中研究浴缸离散化误差,以及以超出当前状态的群集尺寸解决群集尺寸艺术。我们的方法也可以适用于其他嵌入方法,例如密度矩阵嵌入理论和自能嵌入理论。

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