Computing Electronic Correlation Energies using Linear Depth Quantum Circuits

Fuente: arXiv
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Main Authors: Chee, Chong Hian, Mak, Adrian M., Leykam, Daniel, Barkoutsos, Panagiotis Kl., Angelakis, Dimitris G.
Format: Preprint
Published: 2022
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author Chee, Chong Hian
Mak, Adrian M.
Leykam, Daniel
Barkoutsos, Panagiotis Kl.
Angelakis, Dimitris G.
author_facet Chee, Chong Hian
Mak, Adrian M.
Leykam, Daniel
Barkoutsos, Panagiotis Kl.
Angelakis, Dimitris G.
contents Efficient computation of molecular energies is an exciting application of quantum computing for quantum chemistry, but current noisy intermediate-scale quantum (NISQ) devices can only execute shallow circuits, limiting existing variational quantum algorithms, which require deep entangling quantum circuit ansatzes to capture correlations, to small molecules. Here we demonstrate a variational NISQ-friendly algorithm that generates a set of mean-field Hartree-Fock (HF) ansatzes using multiple shallow circuits with depth linear in the number of qubits to estimate electronic correlation energies via perturbation theory up to the second order. We tested the algorithm on several small molecules, both with classical simulations including noise models and on cloud quantum processors, showing that it not only reproduces the equilibrium molecular energies but it also captures the perturbative electronic correlation effects at longer bond distances. As fidelities of quantum processors continue to improve our algorithm will enable the study of larger molecules compared to other approaches requiring higher-order polynomial circuit depth.
format Preprint
id arxiv_https___arxiv_org_abs_2207_03949
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Computing Electronic Correlation Energies using Linear Depth Quantum Circuits
Chee, Chong Hian
Mak, Adrian M.
Leykam, Daniel
Barkoutsos, Panagiotis Kl.
Angelakis, Dimitris G.
Quantum Physics
Chemical Physics
Efficient computation of molecular energies is an exciting application of quantum computing for quantum chemistry, but current noisy intermediate-scale quantum (NISQ) devices can only execute shallow circuits, limiting existing variational quantum algorithms, which require deep entangling quantum circuit ansatzes to capture correlations, to small molecules. Here we demonstrate a variational NISQ-friendly algorithm that generates a set of mean-field Hartree-Fock (HF) ansatzes using multiple shallow circuits with depth linear in the number of qubits to estimate electronic correlation energies via perturbation theory up to the second order. We tested the algorithm on several small molecules, both with classical simulations including noise models and on cloud quantum processors, showing that it not only reproduces the equilibrium molecular energies but it also captures the perturbative electronic correlation effects at longer bond distances. As fidelities of quantum processors continue to improve our algorithm will enable the study of larger molecules compared to other approaches requiring higher-order polynomial circuit depth.
title Computing Electronic Correlation Energies using Linear Depth Quantum Circuits
topic Quantum Physics
Chemical Physics
url https://arxiv.org/abs/2207.03949