Published April 8, 2024 | Version v1
Journal article Open

Quantum simulation of conical intersections

  • 1. University of Chicago

Description

We explore the simulation of conical intersections (CIs) on quantum devices, setting the groundwork for potential applications in nonadiabatic quantum dynamics within molecular systems. The intersecting potential energy surfaces of H3+ are computed from a variance-based contracted quantum eigensolver. We show how the CIs can be correctly described on quantum devices using wavefunctions generated by the anti-Hermitian contracted Schrödinger equation ansatz, which is a unitary transformation of wavefunctions that preserves the topography of CIs. A hybrid quantum-classical procedure is used to locate the seam of CIs. Additionally, we discuss the quantum implementation of the adiabatic to diabatic transformation and its relation to the geometric phase effect. Results on noisy intermediate-scale quantum devices showcase the potential of quantum computers in dealing with problems in nonadiabatic chemistry.

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Additional details

Identifiers

DOI
10.1039/D4CP00391H
Other
oai:uchicago.tind.io:11708

Funding

Department of Energy, Office of Basic Energy Sciences
DE-SC0019215
U.S. National Science Foundation
CHE-2155082
U.S. National Science Foundation
RAISE-QAC-QSA
U.S. National Science Foundation
DMR-2037783

UChicago Information

Division(s)
Physical Sciences Division
Department(s)
Chemistry
Center(s) or Institute(s)
James Franck Institute