Neutron-proton pairing correlations described on quantum computers
Jing Zhang, Denis Lacroix, Yann Beaujeault-Taudiere

TL;DR
This paper applies the ADAPT-VQE quantum algorithm to solve the neutron-proton pairing problem in nuclei, demonstrating improved convergence and accuracy over traditional methods by using symmetry-preserving operator pools and innovative initialization techniques.
Contribution
It introduces a tailored ADAPT-VQE approach with symmetry control and initialization strategies to efficiently solve nuclear pairing problems on quantum computers.
Findings
Symmetry-breaking during optimization can speed convergence.
Particle number symmetry preservation improves stability.
Proposed techniques enhance accuracy over standard methods.
Abstract
The ADAPT-VQE approach is used to solve the neutron-proton pairing problem in atomic nuclei. This variational approach is considered today as one of the most powerful methods to iteratively find the ground state of a many-body problem, provided a performing set of operators, called the pool of operators, is used to explore the Hilbert space of many-body wave-functions. Three different pools of operators, which might eventually break one or several symmetries of the Hamiltonian during the descent to the ground state, are tested for the neutron-proton pairing problem. We observe that the breaking of some symmetries during the optimization of the trial wave-function might, in general, help to speed up the convergence towards the ground state. Still, we rejected the pool of operators that might explicitly break the total particle number because they become uncontrollable during the…
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Taxonomy
TopicsAtomic and Subatomic Physics Research
