A hybrid quantum algorithm to detect conical intersections

Fuente: arXiv
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Main Authors: Koridon, Emiel, Fraxanet, Joana, Dauphin, Alexandre, Visscher, Lucas, O'Brien, Thomas E., Polla, Stefano
Format: Preprint
Published: 2023
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author Koridon, Emiel
Fraxanet, Joana
Dauphin, Alexandre
Visscher, Lucas
O'Brien, Thomas E.
Polla, Stefano
author_facet Koridon, Emiel
Fraxanet, Joana
Dauphin, Alexandre
Visscher, Lucas
O'Brien, Thomas E.
Polla, Stefano
contents Conical intersections are topologically protected crossings between the potential energy surfaces of a molecular Hamiltonian, known to play an important role in chemical processes such as photoisomerization and non-radiative relaxation. They are characterized by a non-zero Berry phase, which is a topological invariant defined on a closed path in atomic coordinate space, taking the value $π$ when the path encircles the intersection manifold. In this work, we show that for real molecular Hamiltonians, the Berry phase can be obtained by tracing a local optimum of a variational ansatz along the chosen path and estimating the overlap between the initial and final state with a control-free Hadamard test. Moreover, by discretizing the path into $N$ points, we can use $N$ single Newton-Raphson steps to update our state non-variationally. Finally, since the Berry phase can only take two discrete values (0 or $π$), our procedure succeeds even for a cumulative error bounded by a constant; this allows us to bound the total sampling cost and to readily verify the success of the procedure. We demonstrate numerically the application of our algorithm on small toy models of the formaldimine molecule (\ce{H2C=NH}).
format Preprint
id arxiv_https___arxiv_org_abs_2304_06070
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle A hybrid quantum algorithm to detect conical intersections
Koridon, Emiel
Fraxanet, Joana
Dauphin, Alexandre
Visscher, Lucas
O'Brien, Thomas E.
Polla, Stefano
Quantum Physics
Chemical Physics
Conical intersections are topologically protected crossings between the potential energy surfaces of a molecular Hamiltonian, known to play an important role in chemical processes such as photoisomerization and non-radiative relaxation. They are characterized by a non-zero Berry phase, which is a topological invariant defined on a closed path in atomic coordinate space, taking the value $π$ when the path encircles the intersection manifold. In this work, we show that for real molecular Hamiltonians, the Berry phase can be obtained by tracing a local optimum of a variational ansatz along the chosen path and estimating the overlap between the initial and final state with a control-free Hadamard test. Moreover, by discretizing the path into $N$ points, we can use $N$ single Newton-Raphson steps to update our state non-variationally. Finally, since the Berry phase can only take two discrete values (0 or $π$), our procedure succeeds even for a cumulative error bounded by a constant; this allows us to bound the total sampling cost and to readily verify the success of the procedure. We demonstrate numerically the application of our algorithm on small toy models of the formaldimine molecule (\ce{H2C=NH}).
title A hybrid quantum algorithm to detect conical intersections
topic Quantum Physics
Chemical Physics
url https://arxiv.org/abs/2304.06070