English

Towards a Transportable Aluminium Ion Quantum Logic Optical Clock

Atomic Physics 2019-06-26 v2

Abstract

With the advent of optical clocks featuring fractional frequency uncertainties on the order of 101710^{-17} and below, new applications such as chronometric levelling with few-cm height resolution emerge. We are developing a transportable optical clock based on a single trapped aluminium ion, which is interrogated via quantum logic spectroscopy. We employ singly-charged calcium as the logic ion for sympathetic cooling, state preparation and readout. Here we present a simple and compact physics and laser package for manipulation of 40Ca+^{40}\mathrm{Ca}^+. Important features are a segmented multi-layer trap with separate loading and probing zones, a compact titanium vacuum chamber, a near-diffraction-limited imaging system with high numerical aperture based on a single biaspheric lens, and an all-in-fiber 40Ca+^{40}\mathrm{Ca}^+ repump laser system. We present preliminary estimates of the trap-induced frequency shifts on 27Al+^{27}\mathrm{Al}^+, derived from measurements with a single calcium ion. The micromotion-induced second-order Doppler shift for 27Al+^{27}\mathrm{Al}^+ has been determined to be \sods and the black-body radiation shift is δνBBR/ν=(4.0±0.4)×1018\delta\nu_\mathrm{BBR}/\nu=(-4.0\pm0.4)\times10^{-18}. Moreover, heating rates of 30 (7) quanta per second at trap frequencies of ωrad,Ca+2π×2.5MHz\omega_\mathrm{rad,Ca+} \approx2\pi\times2.5\,\mathrm{MHz} (ωax,Ca+2π×1.5MHz\omega_\mathrm{ax,Ca+} \approx2\pi\times1.5\,\mathrm{MHz}) in radial (axial) direction have been measured, enabling interrogation times of a few hundreds of milliseconds.

Keywords

Cite

@article{arxiv.1901.02250,
  title  = {Towards a Transportable Aluminium Ion Quantum Logic Optical Clock},
  author = {S. Hannig and L. Pelzer and N. Scharnhorst and J. Kramer and M. Stepanova and Z. T. Xu and N. Spethmann and I. D. Leroux and T. E. Mehlstäubler and P. O. Schmidt},
  journal= {arXiv preprint arXiv:1901.02250},
  year   = {2019}
}

Comments

14 pages, 17 figures

R2 v1 2026-06-23T07:05:51.861Z