• Editors' Suggestion

Generalized Autobalanced Ramsey Spectroscopy of Clock Transitions

V. I. Yudin, A. V. Taichenachev, M. Yu. Basalaev, T. Zanon-Willette, J. W. Pollock, M. Shuker, E. A. Donley, and J. Kitching
Phys. Rev. Applied 9, 054034 – Published 23 May 2018

Abstract

When performing precision measurements, the quantity being measured is often perturbed by the measurement process itself. Such measurements include precision frequency measurements for atomic clock applications carried out with Ramsey spectroscopy. With the aim of eliminating probe-induced perturbations, a method of generalized autobalanced Ramsey spectroscopy (GABRS) is presented and rigorously substantiated. The usual local-oscillator frequency control loop is augmented with a second control loop derived from secondary Ramsey sequences interspersed with the primary sequences and with a different Ramsey period. This second loop feeds back to a secondary clock variable and ultimately compensates for the perturbation of the clock frequency caused by the measurements in the first loop. We show that such a two-loop scheme can lead to perfect compensation for measurement-induced light shifts and does not suffer from the effects of relaxation, time-dependent pulse fluctuations and phase-jump modulation errors that are typical of other hyper-Ramsey schemes. Several variants of GABRS are explored based on different secondary variables including added relative phase shifts between Ramsey pulses, external frequency-step compensation, and variable second-pulse duration. We demonstrate that a universal antisymmetric error signal, and hence perfect compensation at a finite modulation amplitude, is generated only if an additional frequency step applied during both Ramsey pulses is used as the concomitant variable parameter. This universal technique can be applied to the fields of atomic clocks, high-resolution molecular spectroscopy, magnetically induced and two-photon probing schemes, Ramsey-type mass spectrometry, and the field of precision measurements. Some variants of GABRS can also be applied for rf atomic clocks using coherent-population-trapping-based Ramsey spectroscopy of the two-photon dark resonance.

  • Figure
  • Figure
  • Figure
  • Figure
  • Figure
  • Figure
  • Figure
  • Received 25 December 2017
  • Revised 22 March 2018

DOI:https://doi.org/10.1103/PhysRevApplied.9.054034

© 2018 American Physical Society

Physics Subject Headings (PhySH)

Atomic, Molecular & Optical

Authors & Affiliations

V. I. Yudin1,2,3,4,*, A. V. Taichenachev1,2, M. Yu. Basalaev1,2,3, T. Zanon-Willette5, J. W. Pollock4, M. Shuker4, E. A. Donley4, and J. Kitching4

  • 1Novosibirsk State University, ulitsa Pirogova 2, Novosibirsk 630090, Russia
  • 2Institute of Laser Physics SB RAS, prospekt Akademika Lavrent’eva 13/3, Novosibirsk 630090, Russia
  • 3Novosibirsk State Technical University, prospekt Karla Marksa 20, Novosibirsk 630073, Russia
  • 4National Institute of Standards and Technology, Boulder, Colorado 80305, USA
  • 5Sorbonne Universite, Observatoire de Paris, Universite PSL, CNRS, LERMA, F-75005 Paris, France

  • *viyudin@mail.ru

Article Text (Subscription Required)

Click to Expand

References (Subscription Required)

Click to Expand
Issue

Vol. 9, Iss. 5 — May 2018

Subject Areas
Reuse & Permissions
Access Options
Author publication services for translation and copyediting assistance advertisement

Authorization Required


×
×

Images

×

Sign up to receive regular email alerts from Physical Review Applied

Log In

Cancel
×

Search


Article Lookup

Paste a citation or DOI

Enter a citation
×