J. Morgner

Stringent test of QED with hydrogenlike tin

J. Morgner [1], B. Tu [1], C. M. König, T. Sailer [1], F. Heiße, H. Bekker, B. Sikora [1], C. Lyu [1], V. A. Yerokhin [1], Z. Harman [1], J. R. Crespo López-Urrutia, C. H. Keitel [1], S. Sturm [1], K. Blaum [1]

Abstract

Inner-shell electrons naturally sense the electric field close to the nucleus, which can reach extreme values beyond $10^{15}\,\text{V}/\text{cm}$ for the innermost electrons. Especially in few-electron highly charged ions, the interaction with the electromagnetic fields can be accurately calculated within quantum electrodynamics (QED), rendering these ions good candidates to test the validity of QED in strong fields. Consequently, their Lamb shifts were intensively studied in the last decades. Another approach is the measurement of $g$ factors in highly charged ions. However, so far, either experimental accuracy or small field strength in low-$Z$ ions limited the stringency of these QED tests. Here, we report on our high-precision, high-field test of QED in hydrogenlike $^{118}$Sn$^{49+}$. The highly charged ions were produced with the Heidelberg-EBIT (electron beam ion trap) and injected into the ALPHATRAP Penning-trap setup, where the bound-electron $g$ factor was measured with a precision of 0.5 parts-per-billion. For comparison, we present state-of-the-art theory calculations, which together test the underlying QED to about $0.012\,\%$, yielding a stringent test in the strong-field regime. With this measurement, we challenge the best tests via the Lamb shift and, with anticipated advances in the $g$-factor theory, surpass them by more than an order of magnitude.

Robust and resource-efficient microwave near-field entangling $^9$Be$^+$ gate

G. Zarantonello [1,2], H. Hahn [1,2], J. Morgner [1,2], M. Schulte [3], A. Bautista-Salvador [1,2,4], R. F. Werner [5], K. Hammerer [3], C. Ospelkaus [1,2,4]

Abstract

Microwave trapped-ion quantum logic gates avoid spontaneous emission as a fundamental source of decoherence. However, microwave two-qubit gates are still slower than laser-induced gates and hence more sensitive to fluctuations and noise of the motional mode frequency. We propose and implement amplitude-shaped gate drives to obtain resilience to such frequency changes without increasing the pulse energy per gate operation. We demonstrate the resilience by noise injection during a two-qubit entangling gate with $^9$Be$^+$ ion qubits. In absence of injected noise, amplitude modulation gives an operation infidelity in the $10^{-3}$ range.

Measurement of ultra-low heating rates of a single antiproton in a cryogenic Penning trap

M. J. Borchert [1,2], P. E. Blessing [1,3], J. A. Devlin [1], J. A. Harrington [1,4], T. Higuchi [1,5], J. Morgner [1,2], C. Smorra [1], E. Wursten [1,7], M. Bohman [1,4], M. Wiesinger [1,4], A. Mooser [1], K. Blaum [4], Y. Matsuda [5], C. Ospelkaus [2,8], W. Quint [3,9], J. Walz [6,10], Y. Yamazaki [11], S. Ulmer [1]

Abstract

We report on the first detailed study of motional heating in a cryogenic Penning trap using a single antiproton. Employing the continuous Stern-Gerlach effect we observe cyclotron quantum transition rates of 6(1) quanta/h and an electric field noise spectral density below $7.5(3.4)\times 10^{-20}\,\text{V}^{2}\text{m}^{-2} \text{Hz}^{-1}$, which corresponds to a scaled noise spectral density below $8.8(4.0)\times 10^{-12}\,\text{V}^{2}\text{m}^{-2}$, results which are more than two orders of magnitude smaller than those reported by other ion trap experiments.