J. Benhelm

Precision measurement of the branching fractions of the 4P3/2 decay of Ca II

R. Gerritsma [1], G. Kirchmair [1,2], F. Zaehringer, J. Benhelm [1,2], R. Blatt [1,2], C. F. Roos [1,2]

Abstract

We perform precision measurements of the branching ratios of the 4P3/2 level decay of a single 40Ca+ ion suspended in a linear Paul trap. High precision is achieved by a novel technique based on monitoring the population transfer when repeatedly pumping the ion between different internal states. The branching fractions into the 4S1/2, 3D5/2 and 3D3/2 levels are found to be 0.9347(3), 0.0587(2) and 0.00661(4), respectively. For the branching ratio A(P3/2-S1/2)/\sum_J A(P3/2-D_J)=14.31(5), we find a forty-fold improvement in accuracy as compared to the best previous measurement.

Absolute frequency measurement of the 40Ca+ S1/2 - D5/2 clock transition

M. Chwalla [1], J. Benhelm [1,2], K. Kim [1], G. Kirchmair [1,2], T. Monz [1], M. Riebe [1], P. Schindler [1], A. S. Villar [1], W. Haensel, C. F. Roos [1,2], R. Blatt [1,2], M. Abgrall [3], G. Santarelli [3], G. D. Rovera [3], Ph. Laurent [3]

Abstract

We report on the first absolute transition frequency measurement at the 10^{-15} level with a single, laser-cooled 40Ca+ ion in a linear Paul trap. For this measurement, a frequency comb is referenced to the transportable Cs atomic fountain clock of LNE-SYRTE and is used to measure the S1/2-D5/2 electric-quadrupole transition frequency. After the correction of systematic shifts, the clock transition frequency f_Ca+ = 411 042 129 776 393.2 (1.0) Hz is obtained, which corresponds to a fractional uncertainty within a factor of three of the Cs standard. Future improvements are expected to lead to an uncertainty surpassing the best Cs fountain clocks. In addition, we determine the Lande g-factor of the D5/2 level to be gD5/2=1.2003340(3).

Experimental quantum information processing with 43Ca+ ions

J. Benhelm [1,2], G. Kirchmair [1,2], C. F. Roos [1,2], R. Blatt [1,2]

Abstract

For quantum information processing (QIP) with trapped ions, the isotope 43Ca+ offers the combined advantages of a quantum memory with long coherence time, a high fidelity read out and the possibility of performing two qubit gates on a quadrupole transition with a narrow-band laser. Compared to other ions used for quantum computing, 43Ca+ has a relatively complicated level structure. In this paper we discuss how to meet the basic requirements for QIP and demonstrate ground state cooling, robust state initialization and efficient read out for the hyperfine qubit with a single 43Ca+ ion. A microwave field and a Raman light field are used to drive qubit transitions, and the coherence times for both fields are compared. Phase errors due to interferometric instabilities in the Raman field generation do not limit the experiments on a time scale of 100 ms. We find a quantum information storage time of many seconds for the hyperfine qubit.

Towards fault-tolerant quantum computing with trapped ions

J. Benhelm [1,2], G. Kirchmair [1,2], C. F. Roos [1,2], R. Blatt [1,2]

Abstract

Today ion traps are among the most promising physical systems for constructing a quantum device harnessing the computing power inherent in the laws of quantum physics. The standard circuit model of quantum computing requires a universal set of quantum logic gates for the implementation of arbitrary quantum operations. As in classical models of computation, quantum error correction techniques enable rectification of small imperfections in gate operations, thus allowing for perfect computation in the presence of noise. For fault-tolerant computation, it is commonly believed that error thresholds ranging between 10^-4 and 10^-2 will be required depending on the noise model and the computational overhead for realizing the quantum gates. Up to now, all experimental implementations have fallen short of these requirements. Here, we report on a Molmer-Sorensen type gate operation entangling ions with a fidelity of 99.3(1)% which together with single-qubit operations forms a universal set of quantum gates. The gate operation is performed on a pair of qubits encoded in two trapped calcium ions using a single amplitude-modulated laser beam interacting with both ions at the same time. A robust gate operation, mapping separable states onto maximally entangled states is achieved by adiabatically switching the laser-ion coupling on and off. We analyse the performance of a single gate and concatenations of up to 21 gate operations. The gate mechanism holds great promise not only for two-qubit but also for multi-qubit operations.

High-fidelity ion-trap quantum computing with hyperfine clock states

L. Aolita [1,2], K. Kim [3], J. Benhelm [3], C. F. Roos [3,4], H. Häffner

Abstract

We propose the implementation of a geometric-phase gate on magnetic-field-insensitive qubits with $\hatσ^z$-dependent forces for trapped ion quantum computing. The force is exerted by two laser beams in a Raman configuration. Qubit-state dependency is achieved by a small frequency detuning from the virtually-excited state. Ion species with excited states of long radiative lifetimes are used to reduce the chance of a spontaneous photon emission to less than 10$^{-8}$ per gate-run. This eliminates the main source of gate infidelity of previous implementations. With this scheme it seems possible to reach the fault tolerant threshold.

Quantum teleportation with atoms: quantum process tomography

M. Riebe, M. Chwalla, J. Benhelm [2], H. Haeffner, W. Haensel, C. F. Roos [2], R. Blatt [2]

Abstract

The performance of a quantum teleportation algorithm implemented on an ion trap quantum computer is investigated. First the algorithm is analyzed in terms of the teleportation fidelity of six input states evenly distributed over the Bloch sphere. Furthermore, a quantum process tomography of the teleportation algorithm is carried out which provides almost complete knowledge about the algorithm.

Measurement of the hyperfine structure of the S1/2-D5/2 transition in 43Ca+

J. Benhelm [1], G. Kirchmair [1], U. Rapol [1], T. Koerber, C. F. Roos [1,2], R. Blatt [1,2]

Abstract

The hyperfine structure of the S1/2-D5/2 quadrupole transition at 729 nm in 43Ca+ has been investigated by laser spectroscopy using a single trapped 43Ca+ ion. We determine the hyperfine structure constants of the metastable level as A=-3.8931(2) MHz and B=-4.241(4) MHz. The isotope shift of the transition with respect to 40Ca+ was measured to be 4134.713(5) MHz. We demonstrate the existence of transitions that become independent of the first-order Zeeman shift at non-zero low magnetic fields. These transitions might be better suited for building a frequency standard than the well-known 'clock transitions' between m=0 levels at zero magnetic field.

Scalable multi-particle entanglement of trapped ions

H. Haeffner, W. Haensel, C. F. Roos [1,2], J. Benhelm [1,2], D. Chek-al-kar [1], M. Chwalla [1,2], T. Koerber, U. D. Rapol [1,2], M. Riebe [1], P. O. Schmidt [1], C. Becher [1,2,3], O. Gühne, W. Dür, R. Blatt [1,2]

Abstract

Among the various kinds of entangled states, the 'W state' plays an important role as its entanglement is maximally persistent and robust even under particle loss. Such states are central as a resource in quantum information processing and multiparty quantum communication. Here we report the scalable and deterministic generation of four-, five-, six-, seven- and eight-particle entangled states of the W type with trapped ions. We obtain the maximum possible information on these states by performing full characterization via state tomography, using individual control and detection of the ions. A detailed analysis proves that the entanglement is genuine. The availability of such multiparticle entangled states, together with full information in the form of their density matrices, creates a test-bed for theoretical studies of multiparticle entanglement. Independently, -Greenberger-Horne-Zeilinger- entangled states with up to six ions have been created and analysed in Boulder.

Robust entanglement

H. Haeffner, F. Schmidt-Kaler [1], W. Haensel, C. F. Roos [1,2], T. Koerber, M. Chwalla [1], M. Riebe [1], J. Benhelm [1,2], U. D. Rapol [1,2], C. Becher [1], R. Blatt [1,2]

Abstract

It is common belief among physicists that entangled states of quantum systems loose their coherence rather quickly. The reason is that any interaction with the environment which distinguishes between the entangled sub-systems collapses the quantum state. Here we investigate entangled states of two trapped Ca$^+$ ions and observe robust entanglement lasting for more than 20 seconds.