Bound on the variation in the fine structure constant implied by Oklo data
Abstract
Dynamical models of dark energy can imply that the fine structure constant varies over cosmological time scales. Data on shifts in resonance energies from the Oklo natural fission reactor have been used to place restrictive bounds on the change in over the last 1.8 billion years. We review the uncertainties in these analyses, focussing on corrections to the standard estimate of due to Damour and Dyson. Guided, in part, by the best practice for assessing systematic errors in theoretical estimates spelt out by Dobaczewski et al. [in J. Phys. G: Nucl. Part. Phys. 41, 074001 (2014)], we compute these corrections in a variety of models tuned to reproduce existing nuclear data. Although the net correction is uncertain to within a factor of 2 or 3, it constitutes at most no more than 25% of the Damour-Dyson estimate of . Making similar allowances for the uncertainties in the modeling of the operation of the Oklo reactors, we conclude that the relative change in since the Oklo reactors were last active (redshift ) is less than parts per billion. To illustrate the utility of this bound at low-, we consider its implications for the string theory-inspired runaway dilaton model of Damour, Piazza and Veneziano.
Cite
@article{arxiv.1510.00856,
title = {Bound on the variation in the fine structure constant implied by Oklo data},
author = {Leila Hamdan and Edward D. Davis},
journal= {arXiv preprint arXiv:1510.00856},
year = {2015}
}
Comments
Presentation at the DPF 2015 Meeting of the American Physical Society Division of Particles and Fields, Ann Arbor, Michigan, August 4-8, 2015 (Change: footnote added to title page)