Supercritically charged objects and electron-positron pair creation
Abstract
We investigate the stability and pair creation of supercritically charged superheavy nuclei, QM nuggets, strangelets, and strangeon nuggets based on Thomas-Fermi approximation. The model parameters are fixed by reproducing their masses and charge properties reported in earlier publications. It is found that QM nuggets, strangelets, and strangeon nuggets may be more stable than Fe at , , and , respectively. For those stable against neutron emission, the most massive superheavy element has a baryon number 965, while QM nuggets, strangelets, and strangeon nuggets need to have baryon numbers larger than , 433, and . The pair creation will inevitably start for superheavy nuclei with charge numbers , QM nuggets with , strangelets with , and strangeon nuggets with . A universal relation is obtained at a given electron chemical potential , where is the total charge and the radius of electron cloud. This predicts the maximum charge number by taking . For supercritically charged objects with , the decay rate for pair production is estimated based on the JWKB approximation. It is found that most positrons are emitted at s, while a long lasting positron emission is observed for large objects with fm. The emission and annihilation of positrons from supercritically charged objects may be partially responsible for the short -ray burst during the merger of binary compact stars, the 511 keV continuum emission, as well as the narrow faint emission lines in X-ray spectra from galaxies and galaxy clusters.
Keywords
Cite
@article{arxiv.2001.03531,
title = {Supercritically charged objects and electron-positron pair creation},
author = {Cheng-Jun Xia and She-Sheng Xue and Ren-Xin Xu and Shan-Gui Zhou},
journal= {arXiv preprint arXiv:2001.03531},
year = {2020}
}