假想时间
量子计算机
量子算法
量子模拟器
赫巴德模型
量子
量子力学
物理
瓶颈
统计物理学
算法
计算机科学
开放量子系统
超导电性
嵌入式系统
超对称量子力学
作者
Rihito Sakurai,Wataru Mizukami,Hiroshi Shinaoka
标识
DOI:10.1103/physrevresearch.4.023219
摘要
Quantitative descriptions of strongly correlated materials pose a considerable challenge in condensed matter physics and chemistry. A promising approach to address this problem is quantum embedding methods. In particular, the dynamical mean-field theory (DMFT) maps the original system to an effective quantum impurity model comprising correlated orbitals embedded in an electron bath. The biggest bottleneck in DMFT calculations is numerically solving the quantum impurity model, i.e., computing the Green's function. Past studies have proposed theoretical methods to compute the Green's function of a quantum impurity model in polynomial time using a quantum computer. So far, however, efficient methods for computing the imaginary-time Green's functions have not been established despite the advantages of the imaginary-time formulation. We propose a quantum-classical hybrid algorithm for computing imaginary-time Green's functions on quantum devices with limited hardware resources by applying the variational quantum simulation. Using a quantum circuit simulator, we verified this algorithm by computing Green's functions for a dimer model as well as a four-site impurity model obtained by DMFT calculations of the single-band Hubbard model, although our method can be applied to general imaginary-time correlation functions.
科研通智能强力驱动
Strongly Powered by AbleSci AI