L. SlodiÄ\udc8dka

Coherent enhancement of collection of light from linear ion crystals

T. D. Tran [1], D. Babjak [1], A. Kovalenko [1], K. Singh [1], M. T. Pham [2,1], P. ObÅ¡il, A. LeÅ¡undák, O. Číp, L. SlodiÄ\udc8dka

Abstract

The efficient detection of light from trapped ions in free space is paramount for most of their applications. We propose a scheme to enhance the photon collection from linear ion strings. It employs the constructive interference of light scattered from ions along the axial direction in linear Paul traps. The coherent enhancement of photon collection is numerically optimized for a range of feasible spatial angles and realistic ion positions in a single harmonic Coulomb potential. Despite the large mutual distance of scatterers on the order of many wavelengths of scattered light, presented experimental tests confirm the feasibility of enhancements by a factor of $3.05 \pm 0.09$ with a crystal of nine $^{40}$Ca$^+$ ions. Further significant improvements using different ion species, which allow for suppression of the sensitivity to the residual thermal motion, are predicted. The proposed collection geometry is intrinsic to diverse linear ion trap designs and the methodology can be directly applied to an observation of scattering from ion crystals prepared in collective electronic excitations.

Coherent Control of Photon Correlations in Trapped Ion Crystals

K. Singh [1], A. Cidrim [2], A. Kovalenko [1], T. Pham [3,1], O. Číp, L. SlodiÄ\udc8dka, R. Bachelard [2]

Abstract

While the spontaneous emission from independent emitters provides spatially uncorrelated photons - a typical manifestation of quantum randomness, the interference of the coherent scattering leads to a well-defined intensity pattern - a feature described by linear optics. We here demonstrate experimentally how the interplay between the two mechanisms in large systems of quantum emitters leads to spatial variations of photon correlations. The implementation with trapped ion crystals in free space allows us to observe the anti-correlation between photon rates and variance of the photon number distributions in chains of up to 18 ions. For smaller crystals of four ions, the transition from a sub-Poissonian to a super-Poissonian variance of the photon number in the scattered light is reported. For higher numbers of scatterers, the photon statistics still display a strong deviation from the fully incoherent scattering case. Our results illustrate how the interference of coherent scattering, combined with spontaneous emission, provides a control mechanism for the light statistics.

Emergence of super-Poissonian light from indistinguishable single-photon emitters

A. Kovalenko [1], D. Babjak [1,2], A. LeÅ¡undák, L. Podhora [1], L. Lachman [1], P. ObÅ¡il, T. Pham [2], O. Číp, R. Filip [1], L. SlodiÄ\udc8dka

Abstract

The optical interference constitutes a paramount resource in modern physics. At the scale of individual atoms and photons, it is a diverse concept that causes different coherent phenomena. We present the experimental characterization of both coherent and statistical properties of light emitted from ensembles of trapped ions increasing with a number of contributing phase-incoherent independent atomic particles ranging from a single to up to several hundreds. It conclusively demonstrates how super-Poissonian quantum statistics non-trivially arises purely from the finite number of indistinguishable single-photon emitters in the limit of a single detection mode. The achieved new optical emission regime in which these independent atoms contribute coherently to the super-Poissonian statistics provides a new perspective on the emergence of optical coherence at the atomic scale and constitutes a unique toolbox for its generation and control at the most microscopic level.

Motion analysis of a trapped ion chain by single photon self-interference

G. Cerchiari [1], G. Araneda [1,2], L. Podhora [3], L. SlodiÄ\udc8dka, Y. Colombe [1], R. Blatt [1,4]

Abstract

We present an optical scheme to detect the oscillations of a two-ion string confined in a linear Paul trap. The motion is detected by analyzing the intensity correlations in the fluorescence light emitted by one or two ions in the string. We present measurements performed under continuous Doppler cooling and under pulsed illumination. We foresee several direct applications of this detection method, including motional analysis of multi-ion species or coupled mechanical oscillators, and sensing of mechanical correlations.

Measuring ion oscillations at the quantum level with fluorescence light

G. Cerchiari [1], G. Araneda [1,2], L. Podhora [3], L. SlodiÄ\udc8dka, Y. Colombe [1], R. Blatt [1,4]

Abstract

We demonstrate an optical method for detecting the mechanical oscillations of an atom with single-phonon sensitivity. The measurement signal results from the interference between the light scattered by a single trapped atomic ion and that of its mirror image. The motion of the atom modulates the interference path length and hence the photon detection rate. We detect the oscillations of the atom in the Doppler cooling limit and reconstruct average trajectories in phase space. We demonstrate single-phonon sensitivity near the ground state of motion after EIT cooling. These results could be applied for motion detection of other light scatterers of fundamental interest, such as trapped nanoparticles.

Unconditional accumulation of nonclassicality in a single-atom mechanical oscillator

L. Podhora [1], T. Pham [2,1], A. LeÅ¡undák, P. ObÅ¡il, M. Čížek, O. Číp, P. Marek [1], L. SlodiÄ\udc8dka, R. Filip [1]

Abstract

We report on the robust experimental accumulation of nonclassicallity of motion of a single trapped ion. The nonclassicality stems from deterministic incoherent modulation of thermal phonon number distribution implemented by a laser excitation of nonlinear coupling between the ion's internal - electronic levels and external - motional states. We demonstrate that the repetitive application of this nonlinear process monotonically accumulates the observable state nonclassicality. The output states converge to a phonon number distribution with high overlap with a particular Fock state and visible quantum non-Gaussian aspects including corresponding negative Wigner function. The resulting oscillator states prove deterministic transition in the hierarchy of quantum non-Gaussianity up to four phonons. This transition is very robust against experimental imperfections and produces increasing entanglement potential.

A room-temperature ion trapping apparatus with hydrogen partial pressure below $10^{-11}$ mBar

P. ObÅ¡il, A. LeÅ¡undák, T. Pham [2], K. Lakhmanskiy [3], L. Podhora [1], M. Oral [2,1], O. Číp, L. SlodiÄ\udc8dka

Abstract

The lifetime of trapped ion ensembles corresponds to a crucial parameter determining the potential scalability of their prospective applications and is often limited by the achievable vacuum level in the apparatus. We report on the realization of a room-temperature $^{40}{\rm Ca}^{+}$ ion trapping vacuum apparatus with unprecedentedly low reaction rates of ions with a dominant vacuum contaminant: hydrogen. We present our trap assembly procedures and hydrogen pressure characterization by analysis of the CaH$^+$ molecule formation rate.

Faraday rotation of a tightly focussed beam from a single trapped atom

G. Hétet, L. SlodiÄ\udc8dka, N. Röck, R. Blatt [1,2]

Abstract

Faraday rotation of a laser field induced by a single atom is demonstrated by tightly focussing a linearly polarized laser beam onto a laser-cooled ion held in a harmonic Paul trap. The polarization rotation signal is further used to measure the phase-shift associated with electromagnetically-induced-transparency and to demonstrate read-out of the internal state on the qubit transition with a detection fidelity of 98 $\pm$ 1%. These results have direct implications for single atom magnetometery and dispersive read-out of atomic superpositions.

Atom-atom entanglement by single-photon detection

L. SlodiÄ\udc8dka, G. Hétet, N. Röck, P. Schindler [1], M. Hennrich [1], R. Blatt [1]

Abstract

A scheme for entangling distant atoms is realized, as proposed in the seminal paper by Cabrillo et al. [Phys. Rev. A 59, 1025 (1999)]. The protocol is based on quantum interference and detection of a single photon scattered from two effectively one meter distant laser-cooled and trapped atomic ions. The detection of a single photon heralds entanglement of two internal states of the trapped ions with high rate and with a fidelity limited mostly by atomic motion. Control of the entangled state phase is demonstrated by changing the path length of the single-photon interferometer.

A Single Atom as a Mirror of an Optical Cavity

G. Hétet, L. SlodiÄ\udc8dka, M. Hennrich [1], R. Blatt [1,2]

Abstract

By tightly focussing a laser field onto a single cold ion trapped in front of a far-distant dielectric mirror, we could observe a quantum electrodynamic effect whereby the ion behaves as the optical mirror of a Fabry-Pérot cavity. We show that the amplitude of the laser field is significantly altered due to a modification of the electromagnetic mode structure around the atom in a novel regime in which the laser intensity is already changed by the atom alone. e propose a direct application of this system as a quantum memory for single photons.