S. Olmschenk

Doubly-ionized lanthanum as a qubit candidate for quantum networks

S. Olmschenk [1]

Abstract

We propose doubly-ionized lanthanum (La$^{2+}$) as a possible qubit candidate for quantum networks. Transitions between the lowest levels in the atom are in the infrared, enabling a direct matter-light interface amenable to long-distance quantum communication. These transitions could also be used to directly laser-cool trapped La$^{2+}$ ions. The rich hyperfine structure of the ion may allow for a qubit stored in magnetic-field insensitive states, as well as protocols for atom-photon entanglement.

Laser ablation production of Ba, Ca, Dy, Er, La, Lu, and Yb ions

S. Olmschenk, P. Becker [11,29,02,22,03,17]

Abstract

We use a pulsed nitrogen laser to produce atomic ions by laser ablation, measuring the relative ion yield for several elements, including some that have only recently been proposed for use in cold trapped ion experiments. For barium, we monitor the ion yield as a function of the number of applied ablation pulses for different substrates. We also investigate the ion production as a function of the pulse energy, and the efficiency of loading an ion trap as a function of radiofrequency voltage.

Entanglement of Atomic Qubits using an Optical Frequency Comb

D. Hayes, D. N. Matsukevich, P. Maunz, D. Hucul, Q. Quraishi, S. Olmschenk [1], W. Campbell [1], J. Mizrahi [1], C. Senko [1], C. Monroe [1]

Abstract

We demonstrate the use of an optical frequency comb to coherently control and entangle atomic qubits. A train of off-resonant ultrafast laser pulses is used to efficiently and coherently transfer population between electronic and vibrational states of trapped atomic ions and implement an entangling quantum logic gate with high fidelity. This technique can be extended to the high field regime where operations can be performed faster than the trap frequency. This general approach can be applied to more complex quantum systems, such as large collections of interacting atoms or molecules.

Quantum Teleportation Between Distant Matter Qubits

S. Olmschenk [1], D. N. Matsukevich [1], P. Maunz [1], D. Hayes [1], L. -M. Duan [2], C. Monroe [1]

Abstract

Quantum teleportation is the faithful transfer of quantum states between systems, relying on the prior establishment of entanglement and using only classical communication during the transmission. We report teleportation of quantum information between atomic quantum memories separated by about 1 meter. A quantum bit stored in a single trapped ytterbium ion (Yb+) is teleported to a second Yb+ atom with an average fidelity of 90% over a replete set of states. The teleportation protocol is based on the heralded entanglement of the atoms through interference and detection of photons emitted from each atom and guided through optical fibers. This scheme may be used for scalable quantum computation and quantum communication.

Quantum Logic Between Distant Trapped Ions

S. Olmschenk [1], D. Hayes [1], D. N. Matsukevich [1], P. Maunz [1], D. L. Moehring [2], C. Monroe [1]

Abstract

Trapped atomic ions have proven to be one of the most promising candidates for the realization of quantum computation due to their long trapping times, excellent coherence properties, and exquisite control of the internal atomic states. Integrating ions (quantum memory) with photons (distance link) offers a unique path to large-scale quantum computation and long-distance quantum communication. In this article, we present a detailed review of the experimental implementation of a heralded photon-mediated quantum gate between remote ions, and the employment of this gate to perform a teleportation protocol between two ions separated by a distance of about one meter.

Precision measurement of the lifetime of the 6p 2P_1/2 level of Yb+

S. Olmschenk [1], D. Hayes [1], D. N. Matsukevich [1], P. Maunz [1], D. L. Moehring [2], K. C. Younge [3], C. Monroe [1]

Abstract

We present a precise measurement of the lifetime of the 6p 2P_1/2 excited state of a single trapped ytterbium ion (Yb+). A time-correlated single-photon counting technique is used, where ultrafast pulses excite the ion and the emitted photons are coupled into a single-mode optical fiber. By performing the measurement on a single atom with fast excitation and excellent spatial filtering, we are able to eliminate common systematics. The lifetime of the 6p 2P_1/2 state is measured to be 8.12 +/- 0.02 ns.

A heralded quantum gate between remote quantum memories

P. Maunz [1], S. Olmschenk [1], D. Hayes [1], D. N. Matsukevich [1], L. -M. Duan [2], C. Monroe [1]

Abstract

We demonstrate a probabilistic entangling quantum gate between two distant trapped ytterbium ions. The gate is implemented between the hyperfine "clock" state atomic qubits and mediated by the interference of two emitted photons carrying frequency encoded qubits. Heralded by the coincidence detection of these two photons, the gate has an average fidelity of 90+-2%. This entangling gate together with single qubit operations is sufficient to generate large entangled cluster states for scalable quantum computing.

Manipulation and Detection of a Trapped Yb+ Ion Hyperfine Qubit

S. Olmschenk [1,2], K. C. Younge [1], D. L. Moehring [1], D. Matsukevich [1,2], P. Maunz [1,2], C. Monroe [1,2]

Abstract

We demonstrate the use of trapped ytterbium ions as quantum bits for quantum information processing. We implement fast, efficient state preparation and state detection of the first-order magnetic field-insensitive hyperfine levels of 171Yb+, with a measured coherence time of 2.5 seconds. The high efficiency and high fidelity of these operations is accomplished through the stabilization and frequency modulation of relevant laser sources.

On the Transport of Atomic Ions in Linear and Multidimensional Ion Trap Arrays

D. Hucul [1], M. Yeo [1], W. K. Hensinger, J. Rabchuk [2], S. Olmschenk [1], C. Monroe [1]

Abstract

Trapped atomic ions have become one of the most promising architectures for a quantum computer, and current effort is now devoted to the transport of trapped ions through complex segmented ion trap structures in order to scale up to much larger numbers of trapped ion qubits. This paper covers several important issues relevant to ion transport in any type of complex multidimensional rf (Paul) ion trap array. We develop a general theoretical framework for the application of time-dependent electric fields to shuttle laser-cooled ions along any desired trajectory, and describe a method for determining the effect of arbitrary shuttling schedules on the quantum state of trapped ion motion. In addition to the general case of linear shuttling over short distances, we introduce issues particular to the shuttling through multidimensional junctions, which are required for the arbitrary control of the positions of large arrays of trapped ions. This includes the transport of ions around a corner, through a cross or T junction, and the swapping of positions of multiple ions in a laser-cooled crystal. Where possible, we make connections to recent experimental results in a multidimensional T junction trap, where arbitrary 2-dimensional transport was realized.

Efficient Photoionization-Loading of Trapped Cadmium Ions with Ultrafast Pulses

L. Deslauriers [1], M. Acton [2], B. B. Blinov [3], K. -A. Brickman [2], P. C. Haljan [4], W. K. Hensinger [5], D. Hucul [2], S. Katnik [2], R. N. Kohn, [2], P. J. Lee [6], M. J. Madsen [7], P. Maunz [2], S. Olmschenk [2], D. L. Moehring [2], D. Stick [2], J. Sterk [2], M. Yeo [2], K. C. Younge [2], C. Monroe [2]

Abstract

Atomic cadmium ions are loaded into radiofrequency ion traps by photoionization of atoms in a cadmium vapor with ultrafast laser pulses. The photoionization is driven through an intermediate atomic resonance with a frequency-quadrupled mode-locked Ti:Sapphire laser that produces pulses of either 100 fsec or 1 psec duration at a central wavelength of 229 nm. The large bandwidth of the pulses photoionizes all velocity classes of the Cd vapor, resulting in high loading efficiencies compared to previous ion trap loading techniques. Measured loading rates are compared with a simple theoretical model, and we conclude that this technique can potentially ionize every atom traversing the laser beam within the trapping volume. This may allow the operation of ion traps with lower levels of background pressures and less trap electrode surface contamination. The technique and laser system reported here should be applicable to loading most laser-cooled ion species.

Scaling and Suppression of Anomalous Quantum Decoherence in Ion Traps

L. Deslauriers [1], S. Olmschenk [1], D. Stick [1], W. K. Hensinger [1], J. Sterk [1], C. Monroe [1]

Abstract

We measure and characterize anomalous motional decoherence of an atomic ion confined in the lowest quantum levels of a novel rf ion trap that features moveable electrodes. The scaling of decoherence rate with electrode proximity is measured, and when the electrodes are cooled from 300 K to 150 K, the decoherence rate is suppressed by an order of magnitude. This provides direct evidence that anomalous motional decoherence of trapped ions stems from microscopic noisy potentials on the electrodes. These observations are relevant to quantum information processing schemes using trapped ions or other charge-based systems.

Ion Trap in a Semiconductor Chip

D. Stick [1], W. K. Hensinger [1], S. Olmschenk [1], M. J. Madsen [1], K. Schwab [2], C. Monroe [1]

Abstract

The electromagnetic manipulation of isolated atoms has led to many advances in physics, from laser cooling and Bose-Einstein condensation of cold gases to the precise quantum control of individual atomic ion. Work on miniaturizing electromagnetic traps to the micrometer scale promises even higher levels of control and reliability. Compared with 'chip traps' for confining neutral atoms, ion traps with similar dimensions and power dissipation offer much higher confinement forces and allow unparalleled control at the single-atom level. Moreover, ion microtraps are of great interest in the development of miniature mass spectrometer arrays, compact atomic clocks, and most notably, large scale quantum information processors. Here we report the operation of a micrometer-scale ion trap, fabricated on a monolithic chip using semiconductor micro-electromechanical systems (MEMS) technology. We confine, laser cool, and measure heating of a single 111Cd+ ion in an integrated radiofrequency trap etched from a doped gallium arsenide (GaAs) heterostructure.

T-junction ion trap array for two-dimensional ion shuttling, storage and manipulation

W. K. Hensinger, S. Olmschenk, D. Stick, D. Hucul, M. Yeo [1], M. Acton [1], L. Deslauriers [1], J. Rabchuk [2], C. Monroe [1]

Abstract

We demonstrate a two-dimensional 11-zone ion trap array, where individual laser-cooled atomic ions are stored, separated, shuttled, and swapped. The trap geometry consists of two linear rf ion trap sections that are joined at a 90 degree angle to form a T-shaped structure. We shuttle a single ion around the corners of the T-junction and swap the positions of two crystallized ions using voltage sequences designed to accommodate the nontrivial electrical potential near the junction. Full two-dimensional control of multiple ions demonstrated in this system may be crucial for the realization of scalable ion trap quantum computation and the implementation of quantum networks.