Nuclear Waffles
A. S. Schneider, D. K. Berry, C. M. Briggs, M. E. Caplan, C. J., Horowitz

TL;DR
This study uses large-scale molecular dynamics simulations to explore the structure and properties of nuclear pasta phases in neutron star crusts, revealing new insights into their formation, topology, and temperature dependence.
Contribution
It introduces detailed MD simulations of nuclear pasta with large nucleon counts, characterizing the waffle phase and its temperature-dependent structural transitions.
Findings
Yp=0.10 and 0.20 systems form liquid-like structures
Yp=0.30 and 0.40 systems develop solid-like periodic structures
Waffle phase features plates with hexagonal holes and merges at higher temperatures
Abstract
The dense neutron-rich matter found in supernovae and neutron stars is expected to form complex nonuniform phases referred to as nuclear pasta. The pasta shapes depend on density, temperature and proton fraction and determine many transport properties in supernovae and neutron star crusts. We use two recently developed hybrid CPU/GPU codes to perform large scale molecular dynamics (MD) simulations with and nucleons of nuclear pasta. From the output of the MD simulations we characterize the topology and compute two observables, the radial distribution function and the structure factor , for systems with proton fractions and at about one third of nuclear saturation density and temperatures near MeV. We observe that the two lowest proton fraction systems simulated, and , equilibrate quickly and form…
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