De-excitation in multi-nucleon transfer reactions is essential to match experimental data and substantially degrades initial quantum entanglement between projectile-like and target-like fragments.
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4 Pith papers cite this work. Polarity classification is still indexing.
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Bayesian sampling of ~1M EDF parameter sets combined with subspace-projected CDFT shows that statistical uncertainties bring deformed nuclei 150Nd and 150Sm into agreement with data while near-spherical 136Xe and 136Ba remain outside the predicted bands.
Non-axial deformations in TDDFT fission trajectories broaden spin-projection distributions, permit tilting rotations, and reduce axial spin-spin correlations while leaving perpendicular ones more stable.
DRHBc calculations yield ground-state properties, proton and neutron drip lines, and candidate magic numbers N=184, 258, 350 for Z=122 superheavy isotopes, compared against RCHB results.
citing papers explorer
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De-excitation effects on entanglement in multi-nucleon transfer reactions
De-excitation in multi-nucleon transfer reactions is essential to match experimental data and substantially degrades initial quantum entanglement between projectile-like and target-like fragments.
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Statistical uncertainty quantification for multireference covariant density functional theory
Bayesian sampling of ~1M EDF parameter sets combined with subspace-projected CDFT shows that statistical uncertainties bring deformed nuclei 150Nd and 150Sm into agreement with data while near-spherical 136Xe and 136Ba remain outside the predicted bands.
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Intrinsic generation of angular momenta and entanglement in fission
Non-axial deformations in TDDFT fission trajectories broaden spin-projection distributions, permit tilting rotations, and reduce axial spin-spin correlations while leaving perpendicular ones more stable.
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Ground-state properties of superheavy $Z=122$ isotopes within the deformed relativistic Hartree-Bogoliubov theory in continuum
DRHBc calculations yield ground-state properties, proton and neutron drip lines, and candidate magic numbers N=184, 258, 350 for Z=122 superheavy isotopes, compared against RCHB results.