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A Quantum Annealing Protocol to Solve the Nuclear Shell Model
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abstract
The nuclear shell model accurately describes the structure and dynamics of atomic nuclei. However, the exponential scaling of the basis size with the number of degrees of freedom hampers a direct numerical solution for heavy nuclei. In this work, we present a quantum annealing protocol to obtain nuclear ground states. We propose a tailored driver Hamiltonian that preserves a large gap and validate our approach in a dozen nuclei with basis sizes up to $10^5$ using classical simulations of the annealing evolution. We explore the relation between the spectral gap and the total time of the annealing protocol, assessing its accuracy by comparing the fidelity and energy relative error to classical benchmarks. While the nuclear Hamiltonian is non-local and thus challenging to implement in current setups, the estimated computational cost of our annealing protocol on quantum circuits is polynomial in the single particle basis size, paving the way to study heavier nuclei.
Forward citations
Cited by 2 Pith papers
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Comparison of variational quantum eigensolvers in light nuclei
For p-shell nuclei from 6He to 10B, ADAPT-VQE uses fewer total operations than UCC when the many-body space is small (dim(H) < 51), while UCC wins for mid-shell nuclei with dim(H) at least 51.
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Excited States from ADAPT-VQE convergence path in Many-Body Problems: application to nuclear pairing problem and $H_4$ molecule dissociation
Excited-state energies are obtained by diagonalizing the Hamiltonian in the subspace spanned by the intermediate states of an ADAPT-VQE ground-state calculation.
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