Evaluating energy differences on a quantum computer with robust phase estimation
Abstract
We adapt the robust phase estimation algorithm to the evaluation of energy differences between two eigenstates using a quantum computer. This approach does not require controlled unitaries between auxiliary and system registers or even a single auxiliary qubit. As a proof of concept, we calculate the energies of the ground state and low-lying electronic excitations of a hydrogen molecule in a minimal basis on a cloud quantum computer. The denominative robustness of our approach is then quantified in terms of a high tolerance to coherent errors in the state preparation and measurement. Conceptually, we note that all quantum phase estimation algorithms ultimately evaluate eigenvalue differences.
Cite
@article{arxiv.2007.08697,
title = {Evaluating energy differences on a quantum computer with robust phase estimation},
author = {A. E. Russo and K. M. Rudinger and B. C. A. Morrison and A. D. Baczewski},
journal= {arXiv preprint arXiv:2007.08697},
year = {2021}
}
Comments
15 pages, 6 figures (including supplemental material)