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arXiv · 1508.07681

Actinide ions for testing the spatial $α-$variation hypothesis

Abstract

Testing the spatial variation of fine-structure constant $α$ indicated in [Webb et al., Phys. Rev. Lett. 107, 191101 (2011)] with terrestrial laboratory atomic measurements requires at least $\dotα/α\sim 10^{-19}~\textrm{y}^{-1}$ sensitivity. We conduct a systematic search of atomic systems for such a test that have all features of the best optical clock transitions leading to possibility of the frequency measurements with fractional accuracy on the level of $10^{-18}$ or better and have a factor of 100 extra enhancement of $α$-variation in comparisons to experimental frequency ratio measurement accuracy. We identify the pair of actinide Cf$^{15+}$ and Es$^{16+}$ ions as the best system for a test of spatial $α-$variation hypothesis as it satisfies both of these requirements and have sufficiently simple electronic structure to allow for high-precision predictions of all atomic properties required for rapid experimental progress.

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V. A. Dzuba, M. S. Safronova, U. I. Safronova, V. V. Flambaum. 2015-08-31. Actinide ions for testing the spatial $α-$variation hypothesis. https://doi.org/10.1103/physreva.92.060502

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