TY - JOUR
T1 - The uncertainties in the 22Ne+α-Capture reaction rates and the production of the heavy magnesium isotopes in asymptotic giant branch stars of intermediate mass
AU - Karakas, A.I.
AU - Lugaro, M.A.
AU - Wiescher, M.
AU - Görres, J.
AU - Ugalde, C.
PY - 2006
Y1 - 2006
N2 - We present new rates for the 22Ne( , n)25Mg and 22Ne( , ) 26Mg reactions, with uncertainties that have been
considerably reduced compared to previous estimates, and we study how these new rates affect the production of the
heavy magnesium isotopes in models of intermediate-mass asymptotic giant branch (AGB) stars of different initial
compositions. All the models have deep third dredge-up, hot bottom burning, and mass loss. Calculations have been
performed using the two most commonly used estimates of the 22Ne+ rates as well as the new recommended rates,
and with combinations of their upper and lower limits. The main result of the present study is that, with the new rates,
uncertainties on the production of isotopes from Mg to P coming from the 22Ne+ -capture rates have been considerably
reduced.We have therefore removed one of the important sources of uncertainty to effect models of AGB
stars. We have studied the effects of varying the mass-loss rate on nucleosynthesis and discuss other uncertainties
related to the physics employed in the computation of stellar structure, such as the modeling of convection, the
inclusion of a partial mixing zone, and the definition of convective borders. These uncertainties are found to be much
larger than those coming from 22Ne+ -capture rates, when using our new estimates. Much effort is needed to
improve the situation for AGB models.
AB - We present new rates for the 22Ne( , n)25Mg and 22Ne( , ) 26Mg reactions, with uncertainties that have been
considerably reduced compared to previous estimates, and we study how these new rates affect the production of the
heavy magnesium isotopes in models of intermediate-mass asymptotic giant branch (AGB) stars of different initial
compositions. All the models have deep third dredge-up, hot bottom burning, and mass loss. Calculations have been
performed using the two most commonly used estimates of the 22Ne+ rates as well as the new recommended rates,
and with combinations of their upper and lower limits. The main result of the present study is that, with the new rates,
uncertainties on the production of isotopes from Mg to P coming from the 22Ne+ -capture rates have been considerably
reduced.We have therefore removed one of the important sources of uncertainty to effect models of AGB
stars. We have studied the effects of varying the mass-loss rate on nucleosynthesis and discuss other uncertainties
related to the physics employed in the computation of stellar structure, such as the modeling of convection, the
inclusion of a partial mixing zone, and the definition of convective borders. These uncertainties are found to be much
larger than those coming from 22Ne+ -capture rates, when using our new estimates. Much effort is needed to
improve the situation for AGB models.
M3 - Article
SN - 0004-637X
VL - 643
SP - 471
EP - 483
JO - Astrophysical Journal
JF - Astrophysical Journal
IS - 1
ER -