English

Spectral amplification for ground-state energy estimation of electronic structure in first quantization

Quantum Physics 2026-07-16 v1 Chemical Physics

Abstract

We demonstrate an asymptotic gate complexity improvement in first-quantized ground-state energy estimation of electronic structure Hamiltonians in a plane wave basis by employing the sum-of-squares spectral gap amplification protocol. The improvement relies on identifying a sum-of-squares representation of the Hamiltonian which provides a lower bound certificate and low cost block encoding that leads to a provably lower quantum phase estimation gate cost. This is achieved by using a sum-of-squares operator generated by the total charge density operator resulting in a block encoding normalization improvement of λ=O(ηΔ1.5+η1.5Δ1)\lambda = \mathcal{O}\left(\eta\Delta^{-1.5}+\eta^{1.5}\Delta^{-1} \right) compared to prior work λ=O(ηΔ2+η2Δ1)\lambda = \mathcal{O}(\eta\Delta^{-2}+\eta^2\Delta^{-1}) where η\eta is the number of electrons and Δ\Delta is the simulation grid spacing. The asymptotic reduction in block encoding normalization and similar block encoding costs to prior work is demonstrated to reduce resource estimates for materials and chemical systems by a factor of 244×2 - 44\times corresponding to the lowest cost estimates for ab initio materials simulation.

Keywords

Cite

@article{arxiv.2607.15358,
  title  = {Spectral amplification for ground-state energy estimation of electronic structure in first quantization},
  author = {Alicja Dutkiewicz and Alec F. White and Guang Hao Low and A. Eugene DePrince and Matthew P. Harrigan and Marika Kieferova and Ryan Babbush and Dominic W. Berry and Nicholas C. Rubin},
  journal= {arXiv preprint arXiv:2607.15358},
  year   = {2026}
}