Resummation-based Quantum Monte Carlo for Entanglement Entropy Computation
arXiv:2310.01490 · doi:10.1103/PhysRevB.110.115117
Abstract
Based on the recently developed resummation-based quantum Monte Carlo method for the SU() spin and loop-gas models, we develop a new algorithm, dubbed ResumEE, to compute the entanglement entropy (EE) with greatly enhanced efficiency. Our ResumEE exponentially speeds up the computation of the exponentially small value of the , where is the 2nd order Rényi EE, such that the for a generic 2D quantum SU() spin models can be readily computed with high accuracy. We benchmark our algorithm with the previously proposed estimators of on 1D and 2D SU() Heisenberg spin systems to reveal its superior performance and then use it to detect the entanglement scaling data of the Néel-to-VBS transition on 2D SU() Heisenberg model with continuously varying . Our ResumEE algorithm is efficient for precisely evaluating the entanglement entropy of SU() spin models with continuous and reliable access to the conformal field theory data for the highly entangled quantum matter.
11 pages, 9 figures
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