F. Dubin

A quantum detector for photon entanglement

J. Huwer [1,2], J. Ghosh [1,2], N. Piro [1], M. Schug [2], F. Dubin [1], J. Eschner [1,2]

Abstract

We use a single trapped 40Ca+ ion as a resonant, polarization-sensitive absorber to detect and characterize the entanglement of tunable narrowband photon pairs from a spontaneous parametric down-conversion source. Single-photon absorption is marked by a quantum jump in the ion and heralded by coincident detection of the partner photon. For three polarization basis settings of absorption and detection of the herald, we find maximum coincidences always for orthogonal polarizations. The polarization entanglement is further evidenced by tomographic reconstruction of the biphoton quantum state.

Polarization-correlated photon pairs from a single ion

F. Rohde [1], J. Huwer [1], N. Piro [1], M. Almendros [1], C. Schuck [1], F. Dubin [1], J. Eschner [1]

Abstract

In the fluorescence light of a single atom, the probability for emission of a photon with certain polarization depends on the polarization of the photon emitted immediately before it. Here correlations of such kind are investigated with a single trapped calcium ion by means of second order correlation functions. A theoretical model is developed and fitted to the experimental data, which show 91% probability for the emission of polarization-correlated photon pairs within 24 ns.

Resonant interaction of a single atom with single photons from a down-conversion source

C. Schuck, F. Rohde, N. Piro, M. Almendros, J. Huwer, M. W. Mitchell [1], M. Hennrich [1], A. Haase [1], F. Dubin [1], J. Eschner [1]

Abstract

We observe the interaction of a single trapped calcium ion with single photons produced by a narrow-band, resonant down-conversion source [A. Haase et al., Opt. Lett. 34, 55 (2009)], employing a quantum jump scheme. Using the temperature dependence of the down-conversion spectrum and the tunability of the narrow source, absorption of the down-conversion photons is quantitatively characterized.

Bandwidth-tunable single photon source in an ion trap quantum network

M. Almendros [1], J. Huwer [1], N. Piro [1], F. Rohde [1], C. Schuck [1], M. Hennrich [1], F. Dubin [1], J. Eschner [1]

Abstract

We report a tunable single-photon source based on a single trapped ion. Employing spontaneous Raman scattering and in-vacuum optics with large numerical aperture, single photons are efficiently created with controlled temporal shape and coherence time. These can be varied between 70 ns and 1.6 $μ$s, as characterized by operating two sources simultaneously in two remote ion traps which reveals mutual and individual coherence through two-photon interference.

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.