论文标题

超越量子群集理论:密切相关系统的多尺度方法

Beyond Quantum Cluster Theories: Multiscale Approaches for Strongly Correlated Systems

论文作者

Fotso, Herbert F, Tam, Ka-Ming, Moreno, Juana

论文摘要

赋予其许多有趣特性的强烈相关系统的自由度也使它们通过典型的扰动处理变得相当棘手。因此,负责这些技术上有希望的特性的机制主要难以捉摸。计算方法在填补这一空白的努力中发挥了重要作用。特别是,动态平均场理论(DMFT)及其簇扩展,动态簇近似(DCA)已允许取得重大进展。然而,尽管这些嵌入方案的所有有见识的结果,但计算约束,例如量子蒙特卡洛(QMC)中的减号问题,以及精确的对角线化(ED)方法中希尔伯特空间的指数增长,仍然限制长度规模,在形式主义中可以准确处理相关性。克服这些困难的最新进展是多尺度的发展许多身体方法,通过在短长度尺度之间引入中间长度尺度来解决这种挑战,其中使用类似QMC或ED的群集求解器准确地处理相关性,而相关性量表则以平均野外方式处理相关性。在此中间长度上,相关性可以扰动地处理。这是多体多体方法的本质。我们将回顾这些多体多体方法的各种实施,它们产生的结果以及应解决的进一步进步应解决的挑战。

The degrees of freedom that confer to strongly correlated systems their many intriguing properties also render them fairly intractable through typical perturbative treatments. For this reason, the mechanisms responsible for these technologically promising properties remain mostly elusive. Computational approaches have played a major role in efforts to fill this void. In particular, dynamical mean field theory (DMFT) and its cluster extension, the dynamical cluster approximation (DCA) have allowed significant progress. However, despite all the insightful results of these embedding schemes, computational constraints, such as the minus sign problem in Quantum Monte Carlo (QMC), and the exponential growth of the Hilbert space in exact diagonalization (ED) methods, still limit the length scale within which correlations can be treated exactly in the formalism. A recent advance to overcome these difficulties is the development of multiscale many body approaches whereby this challenge is addressed by introducing an intermediate length scale between the short length scale where correlations are treated exactly using a cluster solver such QMC or ED, and the long length scale where correlations are treated in a mean field manner. At this intermediate length scale correlations can be treated perturbatively. This is the essence of multiscale many-body methods. We will review various implementations of these multiscale many-body approaches, the results they have produced, and the outstanding challenges that should be addressed for further advances.

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