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Trapped Ion Quantum Computing Quantum Simulation Quantum Chemistry

Quantum simulation of chemistry via quantum fast multipole method

arXiv
Authors: Dominic W. Berry, Kianna Wan, Andrew D. Baczewski, Elliot C. Eklund, Arkin Tikku, Ryan Babbush

Year

2025

Paper ID

51593

Status

Preprint

Abstract Read

~2 min

Abstract Words

173

Citations

N/A

Abstract

Here we describe an approach for simulating quantum chemistry on quantum computers with significantly lower asymptotic complexity than prior work. The approach uses a real-space first-quantised representation of the molecular Hamiltonian which we propagate using high-order product formulae. Essential for this low complexity is the use of a technique similar to the fast multipole method for computing the Coulomb operator with widetilde{cal O}(η) complexity for a simulation with η particles. We show how to modify this algorithm so that it can be implemented on a quantum computer. We ultimately demonstrate an approach with t\(η4/3N1/3 + η1/3 N2/3\) (ηNt/ε)o(1) gate complexity, where N is the number of grid points, ε is target precision, and t is the duration of time evolution. This is roughly a speedup by {cal O}(η) over most prior algorithms. We provide lower complexity than all prior work for N<η6 (the regime of practical interest), with only first-quantised interaction-picture simulations providing better performance for N>η6. As with the classical fast multipole method, large numbers ηgtrsim 103 would be needed to realise this advantage.

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  • This paper contributes to the Quantum Simulation research area in the Quantum Articles archive.
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  • Here we describe an approach for simulating quantum chemistry on quantum computers with significantly lower asymptotic complexity than prior work.

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