Quantum design in study of pycnonuclear reactions in compact stars and new quasibound states

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Main Authors: Maydanyuk, Sergei P., Shaulskyi, Kostiantyn A.
Format: Preprint
Published: 2022
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author Maydanyuk, Sergei P.
Shaulskyi, Kostiantyn A.
author_facet Maydanyuk, Sergei P.
Shaulskyi, Kostiantyn A.
contents Pycnonuclear reactions in the compact stars at zero temperatures are studied on quantum mechanical basis in the paper. Formalism of multiple internal reflections is generalized for analysis, that was developed for nuclear decays and captures by nuclei with high precision and tests. For the chosen reaction $^{12}$C + $^{12}$C = $^{24}$Mg, we find the following. A quantum study of the pycnonuclear reaction requires a complete analysis of quantum fluxes in the internal nuclear region. This reduces rate and number of pycnonuclear reactions by 1.8 times. This leads to the appearance of new states (called as quasibound states) where the compound nuclear system is formed with maximal probability. As shown, minimal energy of such a state is a little higher than energy of zero-point vibrations in lattice sites in pycnonuclear reaction, however probability of formation of compound system at the quasibound state is essentially larger than the corresponding probability at state of zero-point vibrations. Hence, there is a sense to tell about reaction rates in such quasibound states as more probable, rather than states of zero-point vibrations. This can lead to the essential changes in estimation of the rates of nuclear reactions in stars.
format Preprint
id arxiv_https___arxiv_org_abs_2205_13895
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Quantum design in study of pycnonuclear reactions in compact stars and new quasibound states
Maydanyuk, Sergei P.
Shaulskyi, Kostiantyn A.
Nuclear Theory
High Energy Astrophysical Phenomena
Solar and Stellar Astrophysics
High Energy Physics - Theory
Pycnonuclear reactions in the compact stars at zero temperatures are studied on quantum mechanical basis in the paper. Formalism of multiple internal reflections is generalized for analysis, that was developed for nuclear decays and captures by nuclei with high precision and tests. For the chosen reaction $^{12}$C + $^{12}$C = $^{24}$Mg, we find the following. A quantum study of the pycnonuclear reaction requires a complete analysis of quantum fluxes in the internal nuclear region. This reduces rate and number of pycnonuclear reactions by 1.8 times. This leads to the appearance of new states (called as quasibound states) where the compound nuclear system is formed with maximal probability. As shown, minimal energy of such a state is a little higher than energy of zero-point vibrations in lattice sites in pycnonuclear reaction, however probability of formation of compound system at the quasibound state is essentially larger than the corresponding probability at state of zero-point vibrations. Hence, there is a sense to tell about reaction rates in such quasibound states as more probable, rather than states of zero-point vibrations. This can lead to the essential changes in estimation of the rates of nuclear reactions in stars.
title Quantum design in study of pycnonuclear reactions in compact stars and new quasibound states
topic Nuclear Theory
High Energy Astrophysical Phenomena
Solar and Stellar Astrophysics
High Energy Physics - Theory
url https://arxiv.org/abs/2205.13895