Unitary coupled-cluster for quantum computation of molecular properties in a strong magnetic field

Author:

Culpitt Tanner1ORCID,Tellgren Erik I.2ORCID,Pavošević Fabijan3ORCID

Affiliation:

1. Theoretical Chemistry Institute and Department of Chemistry, University of Wisconsin-Madison 1 , 1101 University Ave., Madison, Wisconsin 53706, USA

2. Hylleraas Centre for Quantum Molecular Sciences, Department of Chemistry, University of Oslo 2 , P.O. Box 1033 Blindern, N-0315 Oslo, Norway

3. Algorithmiq Ltd. 3 , Kanavakatu 3C, FI-00160 Helsinki, Finland

Abstract

In truncated coupled-cluster (CC) theories, non-variational and/or generally complex ground-state energies can occur. This is due to the non-Hermitian nature of the similarity transformed Hamiltonian matrix in combination with CC truncation. For chemical problems that deal with real-valued Hamiltonian matrices, complex CC energies rarely occur. However, for complex-valued Hamiltonian matrices, such as those that arise in the presence of strong magnetic fields, complex CC energies can be regularly observed unless certain symmetry conditions are fulfilled. Therefore, in the presence of magnetic fields, it is desirable to pursue CC methods that are guaranteed to give upper-bound, real-valued energies. In this work, we present the first application of unitary CC to chemical systems in a strong magnetic field. This is achieved utilizing the variational quantum eigensolver algorithm applied to the unitary coupled-cluster singles and doubles (UCCSD) method. We benchmark the method on the H2 molecule in a strong magnetic field and then calculate UCCSD energies for the H4 molecule as a function of both geometry and field angle. We show that while standard CCSD can yield generally complex energies that are not an upper-bound to the true energy, UCCSD always results in variational and real-valued energies. We also show that the imaginary components of the CCSD energy are largest in the strongly correlated region. Last, the UCCSD calculations capture a large percentage of the correlation energy.

Funder

Norges Forskningsråd

CoE Hylleraas Centre for Quantum Molecular Sciences

UNINETT Sigma2

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Variational Quantum Eigensolver Boosted by Adiabatic Connection;The Journal of Physical Chemistry A;2024-01-12

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