English

Measurements of the Ground-State Polarizabilities of Cs, Rb, and K using Atom Interferometry

Atomic Physics 2015-11-25 v2

Abstract

We measured the ground-state static electric-dipole polarizabilities of Cs, Rb, and K atoms using a three-nanograting Mach-Zehnder atom beam interferometer. Our measurements provide benchmark tests for atomic structure calculations and thus test the underlying theory used to interpret atomic parity non-conservation experiments. We measured αCs=4πϵ0×59.45(11)A˚3\alpha_{\mathrm{Cs}} = 4\pi\epsilon_0 \times 59.45(11) \AA^3, αRb=4πϵ0×47.44(9)A˚3\alpha_{\mathrm{Rb}} = 4\pi\epsilon_0 \times 47.44(9) \AA^3, and αK=4πϵ0×42.97(8)A˚3\alpha_{\mathrm{K}} = 4\pi\epsilon_0 \times 42.97(8) \AA^3. In atomic units, these measurements are αCs=401.2(7)\alpha_{\mathrm{Cs}} = 401.2(7), αRb=320.1(6)\alpha_{\mathrm{Rb}} = 320.1(6), and αK=290.0(5)\alpha_{\mathrm{K}} = 290.0(5). We report ratios of polarizabilities αCs/αRb=1.2532(10)\alpha_{\mathrm{Cs}}/\alpha_{\mathrm{Rb}} = 1.2532(10), αCs/αK=1.3835(9)\alpha_{\mathrm{Cs}}/\alpha_{\mathrm{K}} = 1.3835(9), and αRb/αK=1.1040(9)\alpha_{\mathrm{Rb}}/\alpha_{\mathrm{K}} = 1.1040(9) with smaller fractional uncertainty because the systematic errors for individual measurements are largely correlated. Since Cs atom beams have short de Broglie wavelengths, we developed measurement methods that do not require resolved atom diffraction. Specifically, we used phase choppers to measure atomic beam velocity distributions, and we used electric field gradients to give the atom interference pattern a phase shift that depends on atomic polarizability.

Keywords

Cite

@article{arxiv.1509.07091,
  title  = {Measurements of the Ground-State Polarizabilities of Cs, Rb, and K using Atom Interferometry},
  author = {Maxwell D. Gregoire and Ivan Hromada and William F. Holmgren and Raisa Trubko and Alexander D. Cronin},
  journal= {arXiv preprint arXiv:1509.07091},
  year   = {2015}
}

Comments

15 pages, 9 figures, 8 tables