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Benchmarking the variational cluster approach by means of the one-dimensional Bose-Hubbard model

机译:通过一维Bose-Hubbard模型对变分聚类方法进行基准测试

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摘要

Convergence properties of the variational cluster approach with respect to the variational parameter space, cluster size, and boundary conditions of the reference system are investigated and discussed for bosonic many-body systems. Specifically, the variational cluster approach is applied to the one-dimensional Bose-Hubbard model, which exhibits a quantum phase transition from Mott to superfluid phase. In order to benchmark the variational cluster approach, results for the phase boundary delimiting the first Mott lobe are compared with essentially exact density matrix renormalization group data. Furthermore, static quantities, such as the ground state energy and the one-particle density matrix are compared with high-order strong coupling perturbation theory results. For reference systems with open boundary conditions the variational parameter space is extended by an additional variational parameter which allows for a more uniform particle density on the reference system and thus drastically improves the results. It turns out that the variational cluster approach yields accurate results with relatively low-computational effort for both the phase boundary as well as the static properties of the one-dimensional Bose-Hubbard model, even at the tip of the first Mott lobe where correlation effects are most pronounced.
机译:针对玻色多体系统,研究并讨论了变聚类方法相对于参比系统的变参数空间,聚类大小和边界条件的收敛性质。具体而言,将变分簇方法应用于一维Bose-Hubbard模型,该模型表现出从Mott到超流体相的量子相变。为了对变分聚类方法进行基准测试,将定界第一个Mott瓣的相边界的结果与基本精确的密度矩阵重归一化组数据进行比较。此外,将诸如基态能量和单粒子密度矩阵之类的静态量与高阶强耦合摄动理论结果进行了比较。对于具有开放边界条件的参考系统,可变参数空间将通过附加的可变参数扩展,这将使参考系统上的粒子密度更加均匀,从而显着改善结果。结果表明,即使是在第一个莫特波瓣的尖端,相变边界方法和一维Bose-Hubbard模型的静态特性,用变聚类方法都能以相对较低的计算量获得准确的结果。最明显。

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