Molecular dynamics on quantum annealers

被引:0
作者
Igor Gaidai
Dmitri Babikov
Alexander Teplukhin
Brian K. Kendrick
Susan M. Mniszewski
Yu Zhang
Sergei Tretiak
Pavel A. Dub
机构
[1] Marquette University,Department of Chemistry, Wehr Chemistry Building
[2] Stony Brook University,Institute for Advanced Computational Science and Department of Chemistry
[3] Los Alamos National Laboratory,Theoretical Division
[4] Los Alamos National Laboratory,Computer, Computational and Statistical Sciences Division
[5] Los Alamos National Laboratory,Chemistry Division
来源
Scientific Reports | / 12卷
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摘要
In this work we demonstrate a practical prospect of using quantum annealers for simulation of molecular dynamics. A methodology developed for this goal, dubbed Quantum Differential Equations (QDE), is applied to propagate classical trajectories for the vibration of the hydrogen molecule in several regimes: nearly harmonic, highly anharmonic, and dissociative motion. The results obtained using the D-Wave 2000Q quantum annealer are all consistent and quickly converge to the analytical reference solution. Several alternative strategies for such calculations are explored and it was found that the most accurate results and the best efficiency are obtained by combining the quantum annealer with classical post-processing (greedy algorithm). Importantly, the QDE framework developed here is entirely general and can be applied to solve any system of first-order ordinary nonlinear differential equations using a quantum annealer.
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