Composite laser-pulses spectroscopy for high-accuracy optical clocks: a review of recent progress and perspectives
Creators
- 1. Sorbonne Université, Observatoire de Paris, Université PSL, CNRS, LERMA, F-75005, Paris (France)
- 2. Laboratoire Kastler Brossel, Sorbonne Université, CNRS, ENS-Université PSL, Collège de France, 4 place Jussieu, 75005 Paris (France)
- 3. Institut d'Optique Graduate School, 2 avenue Augustin Fresnel, 91127 Palaiseau Cedex (France)
- 4. Aix Marseille Université, CNRS, PIIM UMR 7345, 13397 Marseille (France)
- 5. LNE-SYRTE, Observatoire de Paris, Université PSL, CNRS, Sorbonne Université, 61 avenue de l'Observatoire 75014 Paris (France)
- 6. Novosibirsk State University, ul. Pirogova 2, Novosibirsk, 630090 (Russian Federation)
- 7. Dipartimento di Fisica 'E. Fermi', Università di Pisa, Largo. B. Pontecorvo 3, 56122 Pisa (Italy)
Description
Probing an atomic resonance without disturbing it is an ubiquitous issue in physics. This problem is critical in high-accuracy spectroscopy or for the next generation of atomic optical clocks. Ultra-high resolution frequency metrology requires sophisticated interrogation schemes and robust protocols handling pulse length errors and residual frequency detuning offsets. This review reports recent progress and perspective in such schemes, using sequences of composite laser-pulses tailored in pulse duration, frequency and phase, inspired by NMR techniques and quantum information processing. After a short presentation of Rabi technique and NMR-like composite pulses allowing efficient compensation of electromagnetic field perturbations to achieve robust population transfers, composite laser-pulses are investigated within Ramsey's method of separated oscillating fields in order to generate non-linear compensation of probe-induced frequency shifts. Laser-pulses protocols such as hyper-Ramsey, modified hyper-Ramsey, generalized hyper-Ramsey and hybrid schemes as auto-balanced Ramsey spectroscopy are reviewed. These techniques provide excellent protection against both probe induced light-shift perturbations and laser intensity variations. More sophisticated schemes generating synthetic frequency-shifts are presented. They allow to reduce or completely eliminate imperfect correction of probe-induced frequency-shifts even in presence of decoherence due to the laser line-width. Finally, two universal protocols are presented which provide complete elimination of probe-induced frequency shifts in the general case where both decoherence and relaxation dissipation effects are present by using exact analytic expressions for phase-shifts and the clock frequency detuning. These techniques might be applied to atomic, molecular and nuclear frequency metrology, Ramsey-type mass spectrometry as well as precision spectroscopy. (report on progress)
Availability note (English)
Available from http://dx.doi.org/10.1088/1361-6633/aac9e9Additional details
Identifiers
Publishing Information
- Journal Title
- Reports on Progress in Physics
- Journal Volume
- 81
- Journal Issue
- 9
- Journal Page Range
- [32 p.]
- ISSN
- 0034-4885
- CODEN
- RPPHAG
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 51065431
- Subject category
- S71: CLASSICAL AND QUANTUM MECHANICS, GENERAL PHYSICS; S46: INSTRUMENTATION RELATED TO NUCLEAR SCIENCE AND TECHNOLOGY;
- Descriptors DEI
- ACCURACY; DATA PROCESSING; DISTURBANCES; ELECTROMAGNETIC FIELDS; LASER RADIATION; LINE WIDTHS; MASS SPECTROSCOPY; METROLOGY; NONLINEAR PROBLEMS; NUCLEAR MAGNETIC RESONANCE; PHASE SHIFT; PULSES; QUANTUM INFORMATION; RESOLUTION; REVIEWS
- Descriptors DEC
- DOCUMENT TYPES; ELECTROMAGNETIC RADIATION; INFORMATION; MAGNETIC RESONANCE; PROCESSING; RADIATIONS; RESONANCE; SPECTROSCOPY