S. Gerber

Probing surface electric field noise with a single ion

N. Daniilidis [1], S. Gerber [1], G. Bolloten [1], M. Ramm [1], A. Ransford [1], E. Ulin-Avila [1], I. Talukdar [1,2], H. Häffner

Abstract

We report room-temperature electric field noise measurements combined with in-situ surface characterization and cleaning of a microfabricated ion trap. We used a single-ion electric field noise sensor in combination with surface cleaning and analysis tools, to investigate the relationship between electric field noise from metal surfaces in vacuum and the composition of the surface. These experiments were performed in a novel setup that integrates ion trapping capabilities with surface analysis tools. We find that surface cleaning of an aluminum-copper surface significantly reduces the level of electric field noise, but the surface does not need to be atomically clean to show noise levels comparable to those of the best cryogenic traps. The post-cleaning noise levels are low enough to allow fault-tolerant trapped-ion quantum information processing on a microfabricated surface trap.

Intensity-field correlation of single-atom resonance fluorescence

S. Gerber [1], D. Rotter [1], L. Slodicka, J. Eschner [1,4], H. J. Carmichael [3], R. Blatt [1,2]

Abstract

We report measurements of an intensity-field correlation function of the resonance fluorescence of a single trapped Ba+ ion. Detection of a photon prepares the atom in its ground state and we observe its subsequent evolution under interaction with a laser field of well defined phase. We record the regression of the resonance fluorescence source field. This provides a direct measurement of the field of the radiating dipole of a single atom and exhibits its strong non-classical behavior. In the experimental setup an interference measurement is conditioned on a fluorescence photon detection. The third-order correlation function thus recorded demonstrates an aspect of wave-particle duality at the single-atom, single-photon level.

Quantum interference from remotely trapped ions

S. Gerber [1], D. Rotter [1], M. Hennrich [1], R. Blatt [1], F. Rohde [2], C. Schuck [2], M. Almendros [2], R. Gehr [2], F. Dubin [2], J. Eschner [2]

Abstract

We observe quantum interference of photons emitted by two continuously laser-excited single ions, independently trapped in distinct vacuum vessels. High contrast two-photon interference is observed in two experiments with different ion species, calcium and barium. Our experimental findings are quantitatively reproduced by Bloch equation calculations. In particular, we show that the coherence of the individual resonance fluorescence light field is determined from the observed interference.