Malpetti Daniele, Roscilde Tommaso
Laboratoire de Physique, CNRS UMR 5672, Ecole Normale Supérieure de Lyon, Université de Lyon, 46 Allée d'Italie, Lyon F-69364, France.
Institut Universitaire de France, 103 boulevard Saint-Michel, 75005 Paris, France.
Phys Rev Lett. 2017 Jul 28;119(4):040602. doi: 10.1103/PhysRevLett.119.040602. Epub 2017 Jul 26.
We introduce a new numerical technique, the bosonic auxiliary-field Monte Carlo method, which allows us to calculate the thermal properties of large lattice-boson systems within a systematically improvable semiclassical approach, and which is virtually applicable to any bosonic model. Our method amounts to a decomposition of the lattice into clusters, and to an ansatz for the density matrix of the system in the form of a cluster-separable state-with nonentangled, yet classically correlated clusters. This approximation eliminates any sign problem, and can be systematically improved upon by using clusters of growing size. Extrapolation in the cluster size allows us to reproduce numerically exact results for the superfluid transition of hard-core bosons on the square lattice, and to provide a solid quantitative prediction for the superfluid and chiral transition of hardcore bosons on the frustrated triangular lattice.
我们引入了一种新的数值技术,即玻色子辅助场蒙特卡罗方法,它使我们能够在一种可系统改进的半经典方法内计算大型晶格玻色子系统的热性质,并且实际上适用于任何玻色子模型。我们的方法相当于将晶格分解为团簇,并对系统的密度矩阵采用团簇可分离态的形式进行假设——团簇之间无纠缠但存在经典关联。这种近似消除了任何符号问题,并且可以通过使用尺寸不断增大的团簇来系统地改进。对团簇尺寸进行外推使我们能够数值重现正方晶格上硬核玻色子超流转变的精确结果,并为受挫三角晶格上硬核玻色子的超流和手征转变提供可靠的定量预测。