English

Penning-trap eigenfrequency measurements with optical radiofrequency detectors

Atomic Physics 2024-09-27 v1 Instrumentation and Detectors Quantum Physics

Abstract

We use an electric-dipole laser-driven transition to precisely measure the cyclotron-frequency ratios of the pairs 42^{42}Ca+^+-40^{40}Ca+^+, 44^{44}Ca+^+-40^{40}Ca+^+ and 48^{48}Ca+^+-40^{40}Ca+^+ in a 7-tesla Penning trap. A single laser-cooled (T1T\approx 1~mK) ion serves, together with photon-counting and/or photon-imaging units, as a radiofrequency detector covering a broad-band frequency spectrum, in the present case from kHz to a few MHz. Such detectors (40,42,44,48^{40,42,44,48}Ca+^{\scriptsize{+}}) allow measuring extremely small forces, with measured normalized sensitivities down to 7.4(3.5)7.4(3.5) yN/Hz/\sqrt{\text{Hz}} and 24.9(9.9)24.9(9.9) yN/Hz/\sqrt{\text{Hz}} in the MHz and kHz regime, respectively. The direct determination of the ions' amplitudes makes a cyclotron-frequency measurement process more robust against inhomogeneities of the magnetic field and/or deviations of the electric quadrupole field due to mechanical imperfections of the trap.

Keywords

Cite

@article{arxiv.2308.14884,
  title  = {Penning-trap eigenfrequency measurements with optical radiofrequency detectors},
  author = {Joaquín Berrocal and Alejandro Hernández and Íñigo Arrazola and Francisco Domínguez and Ana Carrasco-Sanz and Francisco Javier Fernández and Michael Block and Daniel Rodríguez},
  journal= {arXiv preprint arXiv:2308.14884},
  year   = {2024}
}

Comments

6 pages, 3 figures

R2 v1 2026-06-28T12:06:41.932Z