Complex-energy approach to sum rules within nuclear density functional theory
Nobuo Hinohara, Markus Kortelainen, Witold Nazarewicz, Erik Olsen

TL;DR
This paper introduces an efficient complex-energy FAM-based method within QRPA to compute nuclear response sum rules, aiding the optimization of nuclear energy density functionals and large-scale nuclear surveys.
Contribution
It develops a new contour integration technique in the complex-energy plane for sum rules within nuclear density functional theory, compatible with non-Hamiltonian EDFs.
Findings
Sum rules computed with the new method agree with traditional QRPA formulations.
The technique is highly efficient and suitable for parallel computing environments.
Applicable even when the Thouless and dielectric theorems are not valid.
Abstract
The linear response of the nucleus to an external field contains unique information about the effective interaction, correlations, and properties of its excited states. To characterize the response, it is useful to use its energy-weighted moments, or sum rules. By comparing computed sum rules with experimental values, the information content of the response can be utilized in the optimization process of the nuclear Hamiltonian or EDF. But the additional information comes at a price: compared to the ground state, computation of excited states is more demanding. To establish an efficient framework to compute sum rules of the response that is adaptable to the optimization of the nuclear EDF and large-scale surveys of collective strength, we have developed a new technique within the complex-energy FAM based on the QRPA. To compute sum rules, we carry out contour integration of the response…
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