Nicolas Spethmann

A low phase noise cavity transmission self-injection locked laser system for atomic physics experiments

Ludwig Krinner, Kai Dietze, Lennart Pelzer, Nicolas Spethmann, Piet O. Schmidt

Abstract

Lasers with high spectral purity are indispensable for optical clocks and coherent manipulation of atomic and molecular qubits for applications such as quantum computing and quantum simulation. Stabilisation of the laser to a reference can provide a narrow linewidth and high spectral purity. However, widely-used diode lasers exhibit fast phase noise that prevents high fidelity qubit manipulation. Here we demonstrate a self-injection locked diode laser system utilizing a medium finesse cavity. The cavity not only provides a stable resonance frequency, but at the same time acts as a low-pass filter for phase noise beyond the cavity linewidth of around 100 kHz, resulting in low phase noise from dc to the injection lock limit. We model the expected laser performance and benchmark it using a single trapped $^{40}$Ca$^{+}$-ion as a spectrum analyser. We show that the fast phase noise of the laser at relevant Fourier frequencies of 100 kHz to >2 MHz is suppressed to a noise floor of between -110 dBc/Hz and -120 dBc/Hz, an improvement of 20 to 30 dB over state-of-the-art Pound-Drever-Hall-stabilized extended-cavity diode lasers. This strong suppression avoids incoherent (spurious) spin flips during manipulation of optical qubits and improves laser-driven gates in using diode lasers with applications in quantum logic spectroscopy, quantum simulation and quantum computation.

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.

Robust optical clock transitions in trapped ions

Nati Aharon [1], Nicolas Spethmann [2], Ian D. Leroux [2,3], Piet O. Schmidt [2,4], Alex Retzker [1]

Abstract

We present a novel method for engineering an optical clock transition that is robust against external field fluctuations and is able to overcome limits resulting from field inhomogeneities. The technique is based on the application of continuous driving fields to form a pair of dressed states essentially free of all relevant shifts. Specifically, the clock transition is robust to magnetic shifts, quadrupole and other tensor shifts, and amplitude fluctuations of the driving fields. The scheme is applicable to either a single ion or an ensemble of ions, and is relevant for several types of ions, such as $^{40}\mathrm{Ca}^{+}$, $^{88}\mathrm{Sr}^{+}$, $^{138}\mathrm{Ba}^{+}$ and $^{176}\mathrm{Lu}^{+}$. Taking a spherically symmetric Coulomb crystal formed by 400 $^{40}\mathrm{Ca}^{+}$ ions as an example, we show through numerical simulations that the inhomogeneous linewidth of tens of Hertz in such a crystal together with linear Zeeman shifts of order 10~MHz are reduced to form a linewidth of around 1~Hz. We estimate a two-order-of-magnitude reduction in averaging time compared to state-of-the art single ion frequency references, assuming a probe laser fractional instability of $10^{-15}$. Furthermore, a statistical uncertainty reaching $2.9\times 10^{-16}$ in 1~s is estimated for a cascaded clock scheme in which the dynamically decoupled Coulomb crystal clock stabilizes the interrogation laser for an $^{27}\mathrm{Al}^{+}$ clock.

Cavity-mediated coupling of mechanical oscillators limited by quantum backaction

Nicolas Spethmann [1,2], Jonathan Kohler [1], Sydney Schreppler [1], Lukas Buchmann [1], Dan M. Stamper-Kurn [1,3]

Abstract

A complex quantum system can be constructed by coupling simple quantum elements to one another. For example, trapped-ion or superconducting quantum bits may be coupled by Coulomb interactions, mediated by the exchange of virtual photons. Alternatively quantum objects can be coupled by the exchange of real photons, particularly when driven within resonators that amplify interactions with a single electro-magnetic mode. However, in such an open system, the capacity of a coupling channel to convey quantum information or generate entanglement may be compromised. Here, we realize phase-coherent interactions between two spatially separated, near-ground-state mechanical oscillators within a driven optical cavity. We observe also the noise imparted by the optical coupling, which results in correlated mechanical fluctuations of the two oscillators. Achieving the quantum backaction dominated regime opens the door to numerous applications of cavity optomechanics with a complex mechanical system. Our results thereby illustrate the potential, and also the challenge, of coupling quantum objects with light.