Boninsegni M, Prokof'ev N V, Svistunov B V
Department of Physics, University of Alberta, Edmonton, Alberta, Canada T6G 2J1.
Phys Rev E Stat Nonlin Soft Matter Phys. 2006 Sep;74(3 Pt 2):036701. doi: 10.1103/PhysRevE.74.036701. Epub 2006 Sep 1.
A detailed description is provided of a new worm algorithm, enabling the accurate computation of thermodynamic properties of quantum many-body systems in continuous space, at finite temperature. The algorithm is formulated within the general path integral Monte Carlo (PIMC) scheme, but also allows one to perform quantum simulations in the grand canonical ensemble, as well as to compute off-diagonal imaginary-time correlation functions, such as the Matsubara Green function, simultaneously with diagonal observables. Another important innovation consists of the expansion of the attractive part of the pairwise potential energy into elementary (diagrammatic) contributions, which are then statistically sampled. This affords a complete microscopic account of the long-range part of the potential energy, while keeping the computational complexity of all updates independent of the size of the simulated system. The computational scheme allows for efficient calculations of the superfluid fraction and off-diagonal correlations in space-time, for system sizes which are orders of magnitude larger than those accessible to conventional PIMC. We present illustrative results for the superfluid transition in bulk liquid 4He in two and three dimensions, as well as the calculation of the chemical potential of hcp 4He.
本文详细描述了一种新的蠕虫算法,该算法能够在有限温度下,对连续空间中的量子多体系统的热力学性质进行精确计算。该算法是在通用路径积分蒙特卡罗(PIMC)方案中制定的,但也允许在巨正则系综中进行量子模拟,以及同时计算对角可观测量的非对角虚时关联函数,如松原格林函数。另一个重要的创新是将成对势能的吸引部分扩展为基本(图解)贡献,然后对其进行统计采样。这提供了势能长程部分的完整微观描述,同时保持所有更新的计算复杂度与模拟系统的大小无关。该计算方案允许对超流分数和时空非对角关联进行高效计算,对于比传统PIMC可访问的系统大小大几个数量级的系统。我们给出了二维和三维体液体4He中超流转变的说明性结果,以及hcp 4He化学势的计算。