Adaptive Multi-resolution 3D Hartree-Fock-Bogoliubov Solver for Nuclear Structure
Junchen Pei, George Fann, Robert Harrison, Witold Nazarewicz, Yue Shi,, Scott Thornton

TL;DR
This paper introduces an adaptive multi-resolution 3D Hartree-Fock-Bogoliubov solver for nuclear structure, capable of modeling complex, symmetry-breaking many-fermion systems with high accuracy and efficiency.
Contribution
The paper presents a novel adaptive pseudo-spectral HFB solver that operates in three dimensions without symmetry restrictions, improving modeling of complex nuclear and atomic systems.
Findings
Successfully benchmarked against existing solvers.
Effectively models weakly-bound and deformed nuclear configurations.
Applicable to neutron star crust pasta phases.
Abstract
Complex many-body systems, such as triaxial and reflection-asymmetric nuclei, weakly-bound halo states, cluster configurations, nuclear fragments produced in heavy-ion fusion reactions, cold Fermi gases, and pasta phases in neutron star crust, they are all characterized by large sizes and complex topologies, in which many geometrical symmetries characteristic of ground-state configurations are broken. A tool of choice to study such complex forms of matter is an adaptive multi-resolution wavelet analysis. This method has generated much excitement since it provides a common framework linking many diversified methodologies across different fields, including signal processing, data compression, harmonic analysis and operator theory, fractals, and quantum field theory. To describe complex superfluid many-fermion systems, we introduce an adaptive pseudo-spectral method for solving…
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