Moustafa Abdel Hafiz

Preliminary characterization of a surface electrode Paul trap for frequency metrology

Josipa Madunic, Lucas Groult, Bachir Achi, Thomas Lauprêtre, Alan Boudrias, Pierre Roset, Valérie Soumann, Yann Kersalé, Moustafa Abdel Hafiz [1], Clément Lacroûte

Abstract

We are developing a single-ion optical clock based on a surface-electrode (SE) trap that we will operate with $^{171}$Yb$^+$ ions on the electric quadrupole transition at 435.5 nm. We present heating rate measurements performed with a prototype SE trap. We also introduce a new, micro-fabricated SE trapping chip using silicon on insulator technology. Electric tests were performed under ultra-high vacuum using a testing chip, including breakdown voltages measurements and flashover detection. We present suitable trapping parameters for this chip, as well as a road-map for improving its design.

Heating rate measurement and characterization of a prototype surface-electrode trap for optical frequency metrology

Thomas Lauprêtre, Bachir Achi [1], Lucas Groult [1], Yann Kersalé, Marion Delehaye [1], Moustafa Abdel Hafiz [1], Clément Lacroûte

Abstract

We present the characterization of a prototype surface-electrode (SE) trap as a first step towards the realization of a compact, single-ion optical clock based on Yb$^+$. The use of a SE trap will be a key factor to benefit from clean-room fabrication techniques and technological advances made in the field of quantum information processing. We succesfully demonstrated trapping at a 500 $μ$m electrodes distance and characterized our trap in terms of lifetime and heating rate. This is to our knowledge the highest distance achieved for heating rates measurements in SE traps. This simple 5-wire design realized with simple materials yields a heating rate of $\mathbf{8\times 10^3}$ phonons/s. We provide an analysis of the performances of this prototype trap for optical frequency metrology.

Guidelines for developing optical clocks with $10^{-18}$ fractional frequency uncertainty

Moustafa Abdel-Hafiz [1], Piotr Ablewski [2], Ali Al-Masoudi [1,3], Héctor Ã\udc81lvarez Martínez, Petr Balling [4], Geoffrey Barwood [5], Erik Benkler [1], Marcin Bober [2], Mateusz Borkowski [2], William Bowden [5,2], Roman CiuryÅ‚o, Hubert Cybulski [2], Alexandre Didier [1,4], Miroslav Doležal, Sören Dörscher, Stephan Falke [1], Rachel M. Godun [5], Ramiz Hamid [6], Ian R. Hill [5], Richard Hobson [5], Nils Huntemann [1], Yann Le Coq [7], Rodolphe Le Targat [7], Thomas Legero [1], Thomas Lindvall [8], Christian Lisdat [1,7], Jérôme Lodewyck, Helen S. Margolis [5,1], Tanja E. Mehlstäubler, Ekkehard Peik [1], Lennart Pelzer [1,9], Marco Pizzocaro [10], Benjamin Rauf [10], Antoine Rolland [5], Nils Scharnhorst [1,9], Marco Schioppo [5], Piet O. Schmidt [1,9], Roman Schwarz [1,6,11], ÇaÄŸrı Åženel, Nicolas Spethmann [1], Uwe Sterr [1], Christian Tamm [1], Jan W. Thomsen [12], Alvise Vianello [5,2,8], MichaÅ‚ Zawada

Abstract

There has been tremendous progress in the performance of optical frequency standards since the first proposals to carry out precision spectroscopy on trapped, single ions in the 1970s. The estimated fractional frequency uncertainty of today's leading optical standards is currently in the $10^{-18}$ range, approximately two orders of magnitude better than that of the best caesium primary frequency standards. This exceptional accuracy and stability is resulting in a growing number of research groups developing optical clocks. While good review papers covering the topic already exist, more practical guidelines are needed as a complement. The purpose of this document is therefore to provide technical guidance for researchers starting in the field of optical clocks. The target audience includes national metrology institutes (NMIs) wanting to set up optical clocks (or subsystems thereof) and PhD students and postdocs entering the field. Another potential audience is academic groups with experience in atomic physics and atom or ion trapping, but with less experience of time and frequency metrology and optical clock requirements. These guidelines have arisen from the scope of the EMPIR project "Optical clocks with $1 \times 10^{-18}$ uncertainty" (OC18). Therefore, the examples are from European laboratories even though similar work is carried out all over the world. The goal of OC18 was to push the development of optical clocks by improving each of the necessary subsystems: ultrastable lasers, neutral-atom and single-ion traps, and interrogation techniques. This document shares the knowledge acquired by the OC18 project consortium and gives practical guidance on each of these aspects.