Quantum Simulations of Nuclei and Nuclear Pasta with the Multi-resolution Adaptive Numerical Environment for Scientific Simulations
I. Sagert, G. I. Fann, F. J. Fattoyev, S. Postnikov, C. J. Horowitz

TL;DR
This paper demonstrates 3D Skyrme Hartree-Fock simulations of nuclear pasta phases in neutron star matter using the MADNESS framework, benchmarking against known nuclei and exploring complex geometries relevant for astrophysics.
Contribution
It introduces the application of the MADNESS multi-resolution framework for simulating nuclear pasta phases with self-consistent 3D Skyrme Hartree-Fock calculations, including benchmarking and geometry exploration.
Findings
Successfully reproduces binding energies and shapes of nuclei.
Final pasta geometries remain similar to initial configurations.
Framework enables inhomogeneous nuclear matter simulations.
Abstract
Neutron star and supernova matter at densities just below the nuclear matter saturation density is expected to form a lattice of exotic shapes. These so-called nuclear pasta phases are caused by Coulomb frustration. Their elastic and transport properties are believed to play an important role for thermal and magnetic field evolution, rotation and oscillation of neutron stars. Furthermore, they can impact neutrino opacities in core-collapse supernovae. In this work, we present proof-of-principle 3D Skyrme Hartree-Fock (SHF) simulations of nuclear pasta with the Multi-resolution ADaptive Numerical Environment for Scientific Simulations (MADNESS). We perform benchmark studies of , and nuclear ground states and calculate binding energies via 3D SHF simulations. Results are compared with experimentally measured binding energies as…
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