Determination of molecular energies via variational-based quantum imaginary time evolution in a superconducting qubit system

被引:0
作者
Zhiwen Zong
Sainan Huai
Tianqi Cai
Wenyan Jin
Ze Zhan
Zhenxing Zhang
Kunliang Bu
Liyang Sui
Ying Fei
Yicong Zheng
Shengyu Zhang
Jianlan Wu
Yi Yin
机构
[1] Zhejiang University,Zhejiang Province Key Laboratory of Quantum Technology and Device, School of Physics
[2] Tencent Quantum Laboratory,undefined
来源
Science China Physics, Mechanics & Astronomy | 2024年 / 67卷
关键词
quantum computation; quantum algorithm; superconducting qubit;
D O I
暂无
中图分类号
学科分类号
摘要
As a valid tool for solving ground state problems, imaginary time evolution (ITE) is widely used in physical and chemical simulations. Different ITE-based algorithms in their quantum counterpart have recently been proposed and applied to some real systems. We experimentally realize the variational-based quantum imaginary time evolution (QITE) algorithm to simulate the ground state energy of hydrogen (H2) and lithium hydride (LiH) molecules in a superconducting qubit system. The H2 molecule is directly simulated using the 3-qubit circuit with unitary-coupled clusters (UCC) ansatz. We also combine QITE with the cluster mean-field (CMF) method to obtain an effective Hamiltonian. The LiH molecule is correspondingly simulated using the 3-qubit circuit with hardware-efficient ansatz. For comparison, the LiH molecule is also directly simulated using the 4-qubit circuit with UCC ansatz at the equilibrium point. All the experimental results show a convergence within 4 iterations, with high-fidelity ground state energy obtained. For a more complex system in the future, the CMF may allow further grouping of interactions to obtain an effective Hamiltonian, then the hybrid QITE algorithm can possibly simulate a relatively large-scale system with fewer qubits.
引用
收藏
相关论文
共 338 条
[1]  
Abrams D S(1997)undefined Phys. Rev. Lett. 79 2586-undefined
[2]  
Lloyd S(2018)undefined Quantum 2 79-undefined
[3]  
Preskill J(2014)undefined Nat. Commun. 5 4213-undefined
[4]  
Peruzzo A(2017)undefined Nature 549 242-undefined
[5]  
McClean J(2019)undefined Nat. Commun. 10 3007-undefined
[6]  
Shadbolt P(2020)undefined Science 369 1084-undefined
[7]  
Yung M H(2005)undefined Science 309 1704-undefined
[8]  
Zhou X Q(1997)undefined J. Mol. Structure-Theochem 394 75-undefined
[9]  
Love P J(2022)undefined Nature 603 416-undefined
[10]  
Aspuru-Guzik A(2001)undefined Science 292 472-undefined