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Elastic alpha-12C scattering and the 12C(alpha,gamma)16O E2 S factor
P Tischhauser1, R E Azuma, L Buchmann
1University of Notre Dame, Notre Dame, Indiana, USA.
Physical Review Letters
|February 28, 2002
Summary
This study measured 12C(alpha,alpha)12C scattering, determining the reduced width amplitude for a key state in Oxygen-16. This value refines calculations for stellar nucleosynthesis and understanding nuclear reactions.
Area of Science:
- Nuclear Physics
- Astrophysics
- Quantum Mechanics
Background:
- Understanding nuclear reactions is crucial for astrophysics, particularly for nucleosynthesis in stars.
- The 12C(alpha,alpha)12C reaction provides insights into the structure of 16O, a key element in stellar evolution.
Purpose of the Study:
- To precisely measure angular distributions of 12C(alpha,alpha)12C elastic scattering.
- To determine the reduced width amplitude of the Ex = 6.917 MeV (2+) state in 16O using R-matrix analysis.
- To calculate the S factor for radiative alpha capture, considering interference effects.
Main Methods:
- Experimental measurement of elastic scattering yields for 12C(alpha,alpha)12C over a range of energies and angles.
- R-matrix analysis to extract nuclear parameters, including reduced width amplitude and interaction radius.
- Calculation of the S factor using determined parameters and existing data on radiative alpha capture and beta-delayed alpha-decay.
Main Results:
- Angular distributions were measured with 12,864 data points.
- The reduced width amplitude gamma12 for the Ex = 6.917 MeV (2+) state in 16O was determined as 0.47 +/- 0.06 MeV(1/2).
- A deep minimum for the interaction radius was found at a = 5.42(+0.16)(-0.27) fm.
- The S factor was calculated to be S(E2)(300) = 53(+13)(-18) keV b at E(c.m.) = 300 keV.
Conclusions:
- The study provides precise experimental data and analysis for the 12C(alpha,alpha)12C reaction.
- The determined parameters refine our understanding of the 16O nuclear structure.
- Calculated S factor aids in modeling nucleosynthesis processes in stars, particularly concerning carbon and oxygen interactions.