Sensitivity of Tunneling-Rotational Transitions in Ethylene Glycol to Variation of Electron-to-Proton Mass Ratio
arXiv:1401.6561 · doi:10.1016/j.jms.2014.03.002
Abstract
Ethylene glycol in its ground conformation has tunneling transition with the frequency about 7 GHz. This leads to a rather complicated tunneling-rotational spectrum. Because tunneling and rotational energies have different dependence on the electron-to-proton mass ratio , this spectrum is highly sensitive to the possible variation. We used simple 14 parameter effective Hamiltonian to calculate dimensionless sensitivity coefficients of the tunneling-rotational transitions and found that they lie in the range from to . Ethylene glycol has been detected in the interstellar medium. All this makes it one of the most sensitive probes of variation at the large space and time scales.
revtex, 8p, 2fig, accepted to J.Mol.Spec; v.2: one more figure added and several new transitions included
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