Simulating quantum chemical dynamics on ion-trap quantum computers
ORAL
Abstract
We consider a short strong hydrogen-bonded system to illustrate a map between the quantum nuclear Hamiltonian and a generalized Ising Hamiltonian that describes the dynamics of the ion trap. We use the Born-Oppenheimer potential surface and kinetic energy of the quantum nuclei to compute the Ising Hamiltonian parameters such that the spin-lattice dynamics exactly reproduces the dynamics of the shared proton. Additionally, we use Sandia National Lab’s (QSCOUT) ion-trap device to emulate the trajectory of the shared proton. This then allows us to extract the vibrational frequencies for the shared proton motion from the spin-lattice dynamics with spectroscopic accuracies of the order of 3.3cm-1. Thus, our approach offers a new paradigm for studying the quantum chemical dynamics and vibrational spectra of molecules on quantum hardware.
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Publication: 1. Mapping quantum chemical dynamics problems to spin-lattice simulators, D. Saha, S. S. Iyengar, P. Richerme, J. M. Smith, A. Sabry, Journal of Chemical Theory and Computation, 2021<br>2. Quantum Computation of Hydrogen Bond Dynamics and Vibrational Spectra, P. Richerme, M. Revelle, D. Saha, M. A. Lopez-Ruiz, A. Dwivedi, S. A. Norrell, J. M. Smith, A. Sabry, and S. S. Iyengar, arXiv:2204.08571, 2022 (Submitted)
Presenters
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Debadrita Saha
Indiana University Department of Chemistry, Bloomington, Indiana University
Authors
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Debadrita Saha
Indiana University Department of Chemistry, Bloomington, Indiana University
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Melissa C Revelle
Sandia National Laboratories
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Jeremy M Smith
Indiana University Department of Chemistry, Bloomington
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Philip Richerme
Indiana University Department of Physics, Bloomington, Indiana University Bloomington
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Amr Sabry
Indiana University Department of Computer Science, Bloomington
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Srinivasan S Iyengar
Indiana Univ - Bloomington