arXiv Analytics

Sign in

arXiv:2112.12539 [nucl-th]AbstractReferencesReviewsResources

Bose-Einstein condensation in finite drops of alpha particles

L. M. Satarov, I. N. Mishustin, H. Stoecker

Published 2021-12-23, updated 2022-07-04Version 2

Ground-state properties of finite drops of alpha particles (Q-balls) are studied within a field-theoretical approach in the mean-field approximation. The strong interaction of alphas is described by the scalar field with a sextic Skyrme-like potential. The radial profiles of scalar- and Coulomb fields are found by solving the coupled system of Klein-Gordon and Poisson equations. The formation of shell-like nuclei, with vanishing density around the center, is predicted at high enough attractive strength of Skyrme potential. The equilibrium values of energy and baryon number of Q-balls and Q-shells are calculated for different sets of interaction parameters. Empirical binding energies of alpha-conjugate nuclei are reproduced only if the gradient term in the Lagrangian is strongly enhanced. It is demonstrated that this enhancement can be explained by a finite size of alpha particles.

Related articles: Most relevant | Search more
arXiv:1811.02924 [nucl-th] (Published 2018-11-07)
Phase transitions and Bose-Einstein condensation in alpha-nucleon matter
arXiv:1004.5198 [nucl-th] (Published 2010-04-29)
Neutron Stars with Bose-Einstein Condensation of Antikaons as MIT Bags
arXiv:1902.06595 [nucl-th] (Published 2019-02-18)
States of the $^{12}$C Nucleus in the Toroidal Configuration