English

Subspace methods for the simulation of molecular response properties on a quantum computer

Chemical Physics 2024-11-07 v1 Quantum Physics

Abstract

We explore Davidson methods for obtaining excitation energies and other linear response properties within quantum self-consistent linear response (q-sc-LR) theory. Davidson-type methods allow for obtaining only a few selected excitation energies without explicitly constructing the electronic Hessian since they only require the ability to perform Hessian-vector multiplications. We apply the Davidson method to calculate the excitation energies of hydrogen chains (up to H10_{10}) and analyze aspects of statistical noise for computing excitation energies on quantum simulators. Additionally, we apply Davidson methods for computing linear response properties such as static polarizabilities for H2_2, LiH, H2_2O, OH^-, and NH3_3, and show that unitary coupled cluster outperforms classical projected coupled cluster for molecular systems with strong correlation. Finally, we formulate the Davidson method for damped (complex) linear response, with application to the nitrogen K-edge X-ray absorption of ammonia, and the C6C_6 coefficients of H2_2, LiH, H2_2O, OH^-, and NH3_3.

Keywords

Cite

@article{arxiv.2402.12186,
  title  = {Subspace methods for the simulation of molecular response properties on a quantum computer},
  author = {Peter Reinholdt and Erik Rosendahl Kjellgren and Juliane Holst Fuglsbjerg and Karl Michael Ziems and Sonia Coriani and Stephan P. A. Sauer and Jacob Kongsted},
  journal= {arXiv preprint arXiv:2402.12186},
  year   = {2024}
}

Comments

35 pages, 5 figures

R2 v1 2026-06-28T14:53:12.911Z