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首页> 外文期刊>Computer physics communications >Quantum Monte Carlo simulations of antiferromagnetism in ultracold fermions on optical lattices within real-space dynamical mean-field theory
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Quantum Monte Carlo simulations of antiferromagnetism in ultracold fermions on optical lattices within real-space dynamical mean-field theory

机译:实空间动力学平均场理论中光学晶格上超冷费米子反铁磁性的量子蒙特卡罗模拟

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摘要

We present a massively parallel quantum Monte Carlo based implementation of real-space dynamical mean-field theory for general inhomogeneous correlated fermionic lattice systems. As a first application, we study magnetic order in a binary mixture of repulsively interacting fermionic atoms harmonically trapped in an optical lattice. We explore temperature effects and establish signatures of the Néel transition in observables directly accessible in cold-atom experiments; entropy estimates are also provided. We demonstrate that the local density approximation (LDA) fails for ordered phases. In contrast, a "slab" approximation allows us to reach experimental system sizes with O(105) atoms without significant loss of accuracy.
机译:我们提出了基于大规模并行量子蒙特卡罗的实空间动力学平均场理论的实现,用于一般非均匀相关的费米子晶格系统。作为第一个应用程序,我们研究了谐波互斥在光学晶格中的排斥相互作用的铁离子原子的二元混合物中的磁序。我们探索温度效应并在冷原子实验中直接可访问的可观测物中建立Néel转变的特征;还提供了熵估计。我们证明了局部密度近似(LDA)对于有序相位失败。相反,“平板”近似值使我们能够使用O(105)原子达到实验系统大小,而不会显着降低精度。

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