Size-Consistent Quantum Chemistry on Quantum Computers

Fuente: arXiv
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Main Authors: Garrett, Noah, Rose, Michael, Mazziotti, David A.
Format: Preprint
Published: 2025
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author Garrett, Noah
Rose, Michael
Mazziotti, David A.
author_facet Garrett, Noah
Rose, Michael
Mazziotti, David A.
contents Hybrid quantum-classical algorithms have begun to leverage quantum devices to efficiently represent many-electron wavefunctions, enabling early demonstrations of molecular simulations on real hardware. A key prerequisite for scalable quantum chemistry, however, is size consistency: the energy of non-interacting subsystems must scale linearly with system size. While many algorithms are theoretically size-consistent, noise on quantum devices may couple nominally independent subsystems and degrade this fundamental property. Here, we systematically evaluate size consistency on quantum hardware by simulating systems composed of increasing numbers of non-interacting H$_{2}$ molecules using optimally shallow unitary circuits. We find that molecular energies remain size-consistent within chemical accuracy for an estimated 118 and 71 H$_{2}$ subsystems for one- and two-qubit unitary designs, respectively, demonstrating that current quantum devices preserve size consistency over chemically relevant system sizes and supporting the feasibility of scalable, noise-resilient simulation of strongly correlated molecules and materials.
format Preprint
id arxiv_https___arxiv_org_abs_2512_18395
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Size-Consistent Quantum Chemistry on Quantum Computers
Garrett, Noah
Rose, Michael
Mazziotti, David A.
Quantum Physics
Chemical Physics
Computational Physics
Hybrid quantum-classical algorithms have begun to leverage quantum devices to efficiently represent many-electron wavefunctions, enabling early demonstrations of molecular simulations on real hardware. A key prerequisite for scalable quantum chemistry, however, is size consistency: the energy of non-interacting subsystems must scale linearly with system size. While many algorithms are theoretically size-consistent, noise on quantum devices may couple nominally independent subsystems and degrade this fundamental property. Here, we systematically evaluate size consistency on quantum hardware by simulating systems composed of increasing numbers of non-interacting H$_{2}$ molecules using optimally shallow unitary circuits. We find that molecular energies remain size-consistent within chemical accuracy for an estimated 118 and 71 H$_{2}$ subsystems for one- and two-qubit unitary designs, respectively, demonstrating that current quantum devices preserve size consistency over chemically relevant system sizes and supporting the feasibility of scalable, noise-resilient simulation of strongly correlated molecules and materials.
title Size-Consistent Quantum Chemistry on Quantum Computers
topic Quantum Physics
Chemical Physics
Computational Physics
url https://arxiv.org/abs/2512.18395