English

Test of Einstein Equivalence Principle for 0-spin and half-integer-spin atoms: Search for spin-gravity coupling effects

Atomic Physics 2014-07-11 v2 General Relativity and Quantum Cosmology

Abstract

We report on a conceptually new test of the equivalence principle performed by measuring the acceleration in Earth's gravity field of two isotopes of strontium atoms, namely, the bosonic 88^{88}Sr isotope which has no spin vs the fermionic 87^{87}Sr isotope which has a half-integer spin. The effect of gravity upon the two atomic species has been probed by means of a precision differential measurement of the Bloch frequency for the two atomic matter waves in a vertical optical lattice. We obtain the values η=(0.2±1.6)×107\eta = (0.2\pm 1.6)\times10^{-7} for the E\"otv\"os parameter and k=(0.5±1.1)×107k=(0.5\pm1.1)\times10^{-7} for the coupling between nuclear spin and gravity. This is the first reported experimental test of the equivalence principle for bosonic and fermionic particles and opens a new way to the search for the predicted spin-gravity coupling effects.

Keywords

Cite

@article{arxiv.1403.1161,
  title  = {Test of Einstein Equivalence Principle for 0-spin and half-integer-spin atoms: Search for spin-gravity coupling effects},
  author = {M. G. Tarallo and T. Mazzoni and N. Poli and D. V. Sutyrin and X. Zhang and G. M. Tino},
  journal= {arXiv preprint arXiv:1403.1161},
  year   = {2014}
}

Comments

5 pages, 4 figures. New spin-gravtity coupling analysis on the data added to the manuscript