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Solvent distribution effects on quantum chemical calculations with quantum computers

Quantum Physics 2024-04-03 v1 Chemical Physics

Abstract

We present a combination of three-dimensional reference interaction site model self-consistent field (3D-RISM-SCF) theory and the variational quantum eigensolver (VQE) to consider the solvent distribution effects within the framework of quantum-classical hybrid computing. The present method, 3D-RISM-VQE, does not include any statistical errors from the solvent configuration sampling owing to the analytical treatment of the statistical solvent distribution. We apply 3D-RISM-VQE to compute the spatial distribution functions of solvent water around a water molecule, the potential and Helmholtz energy curves of NaCl, and to conduct Helmholtz energy component analysis of H2_2O and NH4+_4^+. Moreover, we utilize 3D-RISM-VQE to analyze the extent to which solvent effects alter the efficiency of quantum calculations compared with calculations in the gas phase using the L1L^1-norms of molecular electronic Hamiltonians. Our results demonstrate that the efficiency of quantum chemical calculations on a quantum computer in solution is virtually the same as in the gas phase.

Cite

@article{arxiv.2208.12487,
  title  = {Solvent distribution effects on quantum chemical calculations with quantum computers},
  author = {Yuichiro Yoshida and Wataru Mizukami and Norio Yoshida},
  journal= {arXiv preprint arXiv:2208.12487},
  year   = {2024}
}

Comments

Y.Y. and W.M. contributed equally. 10 pages, 6 figures

R2 v1 2026-06-25T01:59:43.979Z