Using a folding potential derived from nucleon-nucleon interactions and shell-model wave functions in the cluster model plus the multiple internal reflections method, the work calculates quasibound resonance states and formation probabilities for the 24Mg compound nucleus in 12C + 12C pycnonuclear反应
Fusion reactions in multicomponent dense matter
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abstract
We analyze thermonuclear and pycnonuclear fusion reactions in dense matter containing atomic nuclei of different types. We extend a phenomenological expression for the reaction rate, proposed recently by Gasques et al. (2005) for the one-component plasma of nuclei, to the multi-component plasma. The expression contains several fit parameters which we adjust to reproduce the best microscopic calculations available in the literature. Furthermore, we show that pycnonuclear burning is drastically affected by an (unknown) structure of the multi-component matter (a regular lattice, a uniform mix, etc.). We apply the results to study nuclear burning in a carbon_12-oxygen_16 mixture. In this context we present new calculations of the astrophysical S-factors for carbon-oxygen and oxygen-oxygen fusion reactions. We show that the presence of a CO lattice can strongly suppress carbon ignition in white dwarf cores and neutron star crusts at densities > 3e9 g cm^{-3} and temperatures T<1e8 K.
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Microscopic study of nuclei synthesis in pycnonuclear reaction $^{12}$C + $^{12}$C in neutron stars
Using a folding potential derived from nucleon-nucleon interactions and shell-model wave functions in the cluster model plus the multiple internal reflections method, the work calculates quasibound resonance states and formation probabilities for the 24Mg compound nucleus in 12C + 12C pycnonuclear反应