Time-variability of alpha from realistic models of Oklo reactors
arXiv:nucl-ex/0701019 · doi:10.1103/PhysRevC.74.024607
Abstract
We reanalyze Oklo Sm data using realistic models of the natural nuclear reactors. Disagreements among recent Oklo determinations of the time evolution of , the electromagnetic fine structure constant, are shown to be due to different reactor models, which led to different neutron spectra used in the calculations. We use known Oklo reactor epithermal spectral indices as criteria for selecting realistic reactor models. Two Oklo reactors, RZ2 and RZ10, were modeled with MCNP. The resulting neutron spectra were used to calculate the change in the Sm effective neutron capture cross section as a function of a possible shift in the energy of the 97.3-meV resonance. We independently deduce ancient Sm effective cross sections, and use these values to set limits on the time-variation of . Our study resolves a contradictory situation with previous Oklo -results. Our suggested bound on a possible time variation of over two billion years is stringent: , but model dependent in that it assumes only has varied over time.
14 pages, 4 figures. Corrections: minus sign missing in equation 32, changed sign of change in alpha in equations 33 and 34. Also added two new references and corrected minor typographical errors
Cited by in corpus (5)
- Environmental Dependence of Masses and Coupling Constants
- Dependence of nuclear binding on hadronic mass variation
- On the cosmological evolution of alpha and mu and the dynamics of dark energy
- Possible time-variability of the fine-structure constant expected from the accelerating universe
- Cosmological Consequences of Topological Defects: Dark Energy and Varying Fundamental Constants