Quantum Error-Corrected Computation of Molecular Energies
Abstract
We present the first demonstration of an end-to-end pipeline with quantum error correction (QEC) for a quantum computation of the electronic structure of molecular systems. We calculate the ground-state energy of molecular hydrogen, using quantum phase estimation (QPE) on qubits encoded with the color code on Quantinuum H2-2. We obtain improvements in computational fidelity by (1) introducing several partially fault-tolerant (FT) techniques for the Clifford+ (arbitrary-angle single-qubit rotation) gate set, and (2) integrating Steane QEC gadgets for real-time error correction. In particular, the latter enhances the QPE circuits' performance despite the complexity of the extra QEC circuitry. The encoded circuits contain up to 1585 (546) fixed and 7202 (1702) conditional physical two-qubit gates (mid-circuit measurements), and 3900 (760) total operations are applied on average. The energy is experimentally estimated to within hartree, where denotes the exact ground state energy within the given basis set. Additionally, we conduct numerical simulations with tunable noise parameters to identify the dominant sources of noise. We find that orienting the QEC protocols towards higher memory noise protection is the most promising avenue to improve our experimental results.
Cite
@article{arxiv.2505.09133,
title = {Quantum Error-Corrected Computation of Molecular Energies},
author = {Kentaro Yamamoto and Yuta Kikuchi and David Amaro and Ben Criger and Silas Dilkes and Ciarán Ryan-Anderson and Andrew Tranter and Joan M. Dreiling and Dan Gresh and Cameron Foltz and Michael Mills and Steven A. Moses and Peter E. Siegfried and Maxwell D. Urmey and Justin J. Burau and Aaron Hankin and Dominic Lucchetti and John P. Gaebler and Natalie C. Brown and Brian Neyenhuis and David Muñoz Ramo},
journal= {arXiv preprint arXiv:2505.09133},
year = {2026}
}
Comments
21 pages, 7 figures