C. Ospelkaus

Full Single-Quantum Control of Particles in Penning Traps for Symmetry Tests at the Quantum Limit

J. M. Cornejo, J. -A. Coenders [1,2], A. Lissel [2], N. Poljakov [1,2], M. Prasse [1,2], Y. Priewich [1,2], J. Schaper [1,2], M. Schubert [3], B. Hampel [3], M. Schilling [3], S. Ulmer [5], C. Ospelkaus [1,2]

Abstract

The BASE collaboration aims to measure antimatter systems with the highest precision in order to perform a rigorous test of CPT symmetry and search for physics beyond the Standard Model. As part of the BASE collaboration, we pursue the development of quantum logic inspired cooling and detection techniques for g-factor measurements of (anti-)protons. Implementing these methods requires full quantum-level control of individual antimatter particles confined in cryogenic Penning traps. By mapping the (anti-)proton's internal state onto a co-trapped 9Be+ "logic" ion via free Coulomb coupling in a double-well potential, we can accelerate measurement cycles and push g-factor precision measurements on (anti-)protons toward the quantum limit. Here, we present an overview of the proposed method and the current status of the project, with special emphasis on the new cryogenic multi-Penning-trap stack and the proton detection system.

Orders of Magnitude Improved Cyclotron-Mode Cooling for Non-Destructive Spin Quantum Transition Spectroscopy with Single Trapped Antiprotons

B. M. Latacz [1,2], M. Fleck [1,3,2,4], J. I. Jaeger, G. Umbrazunas [1,5], B. P. Arndt [1,4,6], S. R. Erlewein [1,4], E. J. Wursten [1], J. A. Devlin [1,2], P. Micke [1,2,4], F. Abbass [7], D. Schweitzer [7], M. Wiesinger [4], C. Will [4], H. Yildiz [7], K. Blaum [4], Y. Matsuda [3], A. Mooser [4], C. Ospelkaus [8,9], A. Soter [5], W. Quint [6], J. Walz [7,10], Y. Yamazaki [1], C. Smorra [1,7], S. Ulmer [1,11]

Abstract

We demonstrate efficient sub-thermal cooling of the modified cyclotron mode of a single trapped antiproton and reach particle temperatures $T_+=E_+/k_\text{B}$ below $200\,$mK in preparation times shorter than $500\,$s. This corresponds to the fastest resistive single-particle cyclotron cooling to sub-thermal temperatures ever demonstrated. By cooling trapped particles to such low energies, we demonstrate the detection of antiproton spin transitions with an error-rate $<0.000025$, more than three orders of magnitude better than in previous best experiments. This method will have enormous impact on multi-Penning-trap experiments that measure magnetic moments with single nuclear spins for tests of matter/antimatter symmetry, high-precision mass-spectrometry, and measurements of electron $g$-factors bound to highly-charged ions that test quantum electrodynamics.

Arbitrary quantum circuits on a fully integrated two-qubit computation register for a trapped-ion quantum processor

N. Pulido-Mateo [1,2], H. Mendpara [1,2], M. Duwe [1,2], T. Dubielzig [1], G. Zarantonello [1], L. Krinner [1,2], C. Ospelkaus [1,2,3]

Abstract

We report on the implementation of arbitrary circuits on a universal two-qubit register that can act as the computational module in a trapped-ion quantum computer based on the quantum charge-coupled device architecture. A universal set of quantum gates is implemented on a two-ion Coulomb crystal of $^9$Be$^+$ ions using only chip-integrated microwave addressing. Individual-ion addressing is implemented using microwave micromotion sideband transitions; we obtain upper limits on addressing cross-talk in the register. Arbitrary two-qubit operations are characterized using the cycle benchmarking protocol.

Fast adiabatic transport of single laser-cooled $^9$Be$^+$ ions in a cryogenic Penning trap stack

T. Meiners, J. -A. Coenders, J. Mielke, M. Niemann, J. M. Cornejo, S. Ulmer, C. Ospelkaus

Abstract

High precision mass and $g$-factor measurements in Penning traps have enabled groundbreaking tests of fundamental physics. The most advanced setups use multi-trap methods, which employ transport of particles between specialized trap zones. Present developments focused on the implementation of sympathetic laser cooling will enable significantly shorter duty cycles and better accuracies in many of these scenarios. To take full advantage of these increased capabilities, we implement fast adiabatic transport concepts developed in the context of trapped-ion quantum information processing in a cryogenic Penning trap system. We show adiabatic transport of a single $^9\mathrm{Be}^+$ ion initially cooled to 2 mK over a 2.2 cm distance within 15 ms and with less than 10\,mK energy gain at a peak velocity of 3 m/s. These results represent an important step towards the implementation of quantum logic spectroscopy in the \ppbar system. Applying these developments to other multi-trap systems has the potential to considerably increase the data-sampling rate in these experiments.

Optical stimulated-Raman sideband spectroscopy of a single $^9$Be$^+$ ion in a Penning trap

J. M. Cornejo, J. Brombacher, J. -A. Coenders, M. von Boehn, T. Meiners, M. Niemann, S. Ulmer, C. Ospelkaus

Abstract

We demonstrate optical sideband spectroscopy of a single $^9$Be$^+$ ion in a cryogenic 5 Tesla Penning trap using two-photon stimulated-Raman transitions between the two Zeeman sublevels of the $1s^{2}2s$ ground state manifold. By applying two complementary coupling schemes, we accurately measure Raman resonances with and without contributions from motional sidebands. From the latter we obtain an axial sideband spectrum with an effective mode temperature of (3.1 $\pm$ 0.4)~mK. This results are a key step for quantum logic operations in Pennings traps, applicable to high precision matter-antimatter comparisons tests in the baryonic sector of the standard model.

BASE-STEP: A transportable antiproton reservoir for fundamental interaction studies

C. Smorra [1,2], F. Abbass [1], M. Bohman [2,3], Y. Dutheil [4], A. Hobl [5], D. Popper [1], B. Arndt [2,3,6], B. B. Bauer [1,2], J. A. Devlin [2,4], S. Erlewein [2,3,4], M. Fleck [2,3,4], J. I. Jäger, B. M. Latacz [2,4], P. Micke [3,4], M. Schiffelholz [7,8], G. Umbrazunas [2,9], M. Wiesinger [3], C. Will [3], E. Wursten [2,4], H. Yildiz [1], K. Blaum [3], Y. Matsuda [10], A. Mooser [3], C. Ospelkaus [7,8], W. Quint [6], A. Soter [9], J. Walz [1,11], Y. Yamazaki [2], S. Ulmer [2,12]

Abstract

Currently, the only worldwide source of low-energy antiprotons is the AD/ELENA facility located at CERN. To date, all precision measurements on single antiprotons have been conducted at this facility and provide stringent tests of the fundamental interactions and their symmetries. However, the magnetic field fluctuations from the facility operation limit the precision of upcoming measurements. To overcome this limitation, we have designed the transportable antiproton trap system BASE-STEP to relocate antiprotons to laboratories with a calm magnetic environment. We anticipate that the transportable antiproton trap will facilitate enhanced tests of CPT invariance with antiprotons, and provide new experimental possibilities of using transported antiprotons and other accelerator-produced exotic ions. We present here the technical design of the transportable trap system. This includes the transportable superconducting magnet, the cryogenic inlay consisting of the trap stack and the detection systems, and the differential pumping section to suppress the residual gas flow into the cryogenic trap chamber.

Real-time capable CCD-based individual trapped-ion qubit measurement

S. Halama [1], T. Dubielzig [1], N. Orlowski [1], C. Torkzaban [1], C. Ospelkaus [1]

Abstract

Individual-qubit readout is a key ingredient for quantum simulation and quantum computation. Furthermore, this readout must take place in real-time to enable the application of quantum error-correction protocols. In this paper the capability of an EMCCD camera with a real-time processing capable output is demonstrated to determine the quantum state of a single $^9$Be$^+$ ion and the required timing sequences are explored. The results are comparable to a PMT based detection. Experiments on the individual detection of $^9$Be$^+$ qubit states undergoing coherent excitation are reported. Sources of error and the amount of crosstalk in the detection system are discussed. Error rates due to known problems in the state preparation and measurement processes were determined to be approximately 0.5 %.

Numerical optimization of amplitude-modulated pulses in microwave-driven entanglement generation

M. Duwe [1,2], G. Zarantonello [1,2], N. Pulido-Mateo [1,2], H. Mendpara [1,2], L. Krinner [1,2], A. Bautista-Salvador [1,2,3], N. V. Vitanov [4], K. Hammerer [5], R. F. Werner [6], C. Ospelkaus [1,2,3]

Abstract

Microwave control of trapped ions can provide an implementation of high-fidelity two-qubit gates free from errors induced by photon scattering. Furthermore, microwave conductors may be embedded into a scalable trap structure, providing the chip-level integration of control that is desirable for scaling. Recent developments have demonstrated how amplitude modulation of the gate drive can permit a two-qubit entangling operation to become robust against motional mode noise and other experimental imperfections. Here, we discuss a method for the numerical optimization of the microwave pulse envelope to produce gate pulses with improved resilience, faster operation and higher energy efficiency.

Sympathetic cooling schemes for separately trapped ions coupled via image currents

C. Will [1], M. Bohman [1,2], T. Driscoll [3], M. Wiesinger [1,2], F. Abbass [4], M. J. Borchert [2,5,6], J. A. Devlin [2,7], S. Erlewein [2,7], M. Fleck [2,8], B. Latacz [2], R. Moller [4], A. Mooser [1], D. Popper [4], E. Wursten [1,2,7], K. Blaum [1], Y. Matsuda [8], C. Ospelkaus [5,6], W. Quint [9], J. Walz [4,10], C. Smorra [2,4], S. Ulmer [2]

Abstract

Cooling of particles to mK-temperatures is essential for a variety of experiments with trapped charged particles. However, many species of interest lack suitable electronic transitions for direct laser cooling. We study theoretically the remote sympathetic cooling of a single proton with laser-cooled $^9$Be$^+$ in a double-Penning-trap system. We investigate three different cooling schemes and find, based on analytical calculations and numerical simulations, that two of them are capable of achieving proton temperatures of about 10 mK with cooling times on the order of 10 s. In contrast, established methods such as feedback-enhanced resistive cooling with image-current detectors are limited to about 1 K in 100 s. Since the studied techniques are applicable to any trapped charged particle and allow spatial separation between the target ion and the cooling species, they enable a variety of precision measurements based on trapped charged particles to be performed at improved sampling rates and with reduced systematic uncertainties.

Sympathetic cooling of a trapped proton mediated by an LC circuit

M. Bohman [1], V. Grunhofer, C. Smorra, M. Wiesinger [1], C. Will [1], M. J. Borchert [4], J. A. Devlin, S. Erlewein, M. Fleck, S. Gavranovic, J. Harrington [1], B. Latacz, A. Mooser [1], D. Popper, E. Wursten, K. Blaum [1], Y. Matsuda, C. Ospelkaus [4], W. Quint, J. Walz, S. Ulmer

Abstract

Efficient cooling of trapped charged particles is essential to many fundamental physics experiments, to high-precision metrology, and to quantum technology. Until now, sympathetic cooling has required close-range Coulomb interactions, but there has been a sustained desire to bring laser-cooling techniques to particles in macroscopically separated traps, extending quantum control techniques to previously inaccessible particles such as highly charged ions, molecular ions and antimatter. Here we demonstrate sympathetic cooling of a single proton using laser-cooled Be+ ions in spatially separated Penning traps. The traps are connected by a superconducting LC circuit that enables energy exchange over a distance of 9 cm. We also demonstrate the cooling of a resonant mode of a macroscopic LC circuit with laser-cooled ions and sympathetic cooling of an individually trapped proton, reaching temperatures far below the environmental temperature. Notably, as this technique uses only image-current interactions, it can be easily applied to an experiment with antiprotons, facilitating improved precision in matter-antimatter comparisons and dark matter searches.

Cryogenic Penning-Trap Apparatus for Precision Experiments with Sympathetically Cooled (anti)protons

M. Niemann [1], T. Meiners [1], J. Mielke [1], N. Pulido [1], J. Schaper [5,1], M. J. Borchert, J. M. Cornejo, A. -G. Paschke [1], G. Zarantonello [1], H. Hahn [1], T. Lang [1], C. Manzoni [3], M. Marangoni [3], G. Cerullo [3], U. Morgner [1], J. -A. Fenske, A. Bautista-Salvador [1], R. Lehnert [4,1], S. Ulmer [5], C. Ospelkaus [1]

Abstract

Current precision experiments with single (anti)protons to test CPT symmetry progress at a rapid pace, but are complicated by the need to cool particles to sub-thermal energies. We describe a cryogenic Penning-trap setup for $^9$Be$^+$ ions designed to allow coupling of single (anti)protons to laser-cooled atomic ions for sympathetic cooling and quantum logic spectroscopy. We report on trapping and laser cooling of clouds and single $^9$Be$^+$ ions. We discuss prospects for a microfabricated trap to allow coupling of single (anti)protons to laser-cooled $^9$Be$^+$ ions for sympathetic laser cooling to sub-mK temperatures on ms time scales.

Towards Sympathetic Cooling of Single (Anti-)Protons

T. Meiners, M. Niemann, J. Mielke, M. Borchert, N. Pulido, J. M. Cornejo, S. Ulmer, C. Ospelkaus

Abstract

We present methods to manipulate and detect the motional state and the spin state of a single antiproton or proton which are currently under development within the BASE (Baryon Antibaryon Symmetry Experiment) collaboration. These methods include sympathetic laser cooling of a single (anti-)proton using a co-trapped atomic ion as well as quantum logic spectroscopy with the two particles and could be implemented within the collaboration for state preparation and state readout in the antiproton $g$-factor measurement experiment at CERN. In our project, these techniques shall be applied using a single $^9\text{Be}^+$ ion as the atomic ion in a Penning trap system at a magnetic field of 5 T. As an intermediate step, a controlled interaction of two beryllium ions in a double-well potential as well as sympathetic cooling of one ion by the other shall be demonstrated.

Creation of double-well potentials in a surface-electrode trap towards a nanofriction model emulator

U. Tanaka [1,2,3], M. Nakamura [1], K. Hayasaka [3,1], A. Bautista-Salvadora [4,5], C. Ospelkaus [4,5], T. E. Mehlstäubler

Abstract

We demonstrate a microfabricated surface-electrode ion trap that is applicable as a nanofriction emulator and studies of many-body dynamics of interacting systems. The trap enables both single-well and double-well trapping potentials in the radial direction, where the distance between the two potential wells can be adjusted by the applied RF voltage. In the double-well configuration, parallel ion strings can be formed, which is a suitable system for the emulation of the Frenkel-Kontorova (FK) model. We derive the condition under which the trap functions as a FK model emulator. The trap is designed so that the Coulomb interaction between two ion strings becomes significant. We report on the microfabrication process for such downsized trap electrodes and experimental results of single-well and double-well operation with calcium ions. With the trap demonstrated in this work we can create atomically accessible, self-assembled Coulomb systems with a wide tuning range of the corrugation parameter in the FK model. This makes it a promising system for quantum simulations, but also for the study of nanofriction in one and higher dimensional systems.

Robust and resource-efficient microwave near-field entangling $^9$Be$^+$ gate

G. Zarantonello [1,2], H. Hahn [1,2], J. Morgner [1,2], M. Schulte [3], A. Bautista-Salvador [1,2,4], R. F. Werner [5], K. Hammerer [3], C. Ospelkaus [1,2,4]

Abstract

Microwave trapped-ion quantum logic gates avoid spontaneous emission as a fundamental source of decoherence. However, microwave two-qubit gates are still slower than laser-induced gates and hence more sensitive to fluctuations and noise of the motional mode frequency. We propose and implement amplitude-shaped gate drives to obtain resilience to such frequency changes without increasing the pulse energy per gate operation. We demonstrate the resilience by noise injection during a two-qubit entangling gate with $^9$Be$^+$ ion qubits. In absence of injected noise, amplitude modulation gives an operation infidelity in the $10^{-3}$ range.

Measurement of ultra-low heating rates of a single antiproton in a cryogenic Penning trap

M. J. Borchert [1,2], P. E. Blessing [1,3], J. A. Devlin [1], J. A. Harrington [1,4], T. Higuchi [1,5], J. Morgner [1,2], C. Smorra [1], E. Wursten [1,7], M. Bohman [1,4], M. Wiesinger [1,4], A. Mooser [1], K. Blaum [4], Y. Matsuda [5], C. Ospelkaus [2,8], W. Quint [3,9], J. Walz [6,10], Y. Yamazaki [11], S. Ulmer [1]

Abstract

We report on the first detailed study of motional heating in a cryogenic Penning trap using a single antiproton. Employing the continuous Stern-Gerlach effect we observe cyclotron quantum transition rates of 6(1) quanta/h and an electric field noise spectral density below $7.5(3.4)\times 10^{-20}\,\text{V}^{2}\text{m}^{-2} \text{Hz}^{-1}$, which corresponds to a scaled noise spectral density below $8.8(4.0)\times 10^{-12}\,\text{V}^{2}\text{m}^{-2}$, results which are more than two orders of magnitude smaller than those reported by other ion trap experiments.

Microwave Near-Field Quantum Control of Trapped Ions

U. Warring [1], C. Ospelkaus [1,2], Y. Colombe [1], K. R. Brown [1], J. M. Amini [1], M. Carsjens [2], D. Leibfried [1], D. J. Wineland [1]

Abstract

Microwave near-field quantum control of spin and motional degrees of freedom of 25Mg+ ions can be used to generate two-ion entanglement, as recently demonstrated in Ospelkaus et al. [Nature 476, 181 (2011)]. Here, we describe additional details of the setup and calibration procedures for these experiments. We discuss the design and characteristics of the surface-electrode trap and the microwave system, and compare experimental measurements of the microwave near-fields with numerical simulations. Additionally, we present a method that utilizes oscillating magnetic-field gradients to detect micromotion induced by the ponderomotive radio-frequency potential in linear traps. Finally, we discuss the present limitations of microwave-driven two-ion entangling gates in our system.

Individual-Ion Addressing with Microwave Field Gradients

U. Warring [1], C. Ospelkaus [1,2], Y. Colombe [1], R. Jördens, D. Leibfried [1], D. J. Wineland [1]

Abstract

Individual-qubit addressing is a prerequisite for many instances of quantum information processing. We demonstrate this capability on trapped-ion qubits with microwave near-fields delivered by electrode structures integrated into a microfabricated surface-electrode trap. We describe four approaches that may be used in quantum information experiments with hyperfine levels as qubits. We implement individual control on two 25Mg+ ions separated by 4.3 micrometer and find spin-flip crosstalk errors on the order of 10^(-3).

Improved high-fidelity transport of trapped-ion qubits through a multi-dimensional array

R. B. Blakestad, C. Ospelkaus, A. P. VanDevender, J. H. Wesenberg, M. J. Biercuk, D. Leibfried [1], D. J. Wineland

Abstract

We have demonstrated transport of Be+ ions through a 2D Paul-trap array that incorporates an X-junction, while maintaining the ions near the motional ground-state of the confining potential well. We expand on the first report of the experiment [1], including a detailed discussion of how the transport potentials were calculated. Two main mechanisms that caused motional excitation during transport are explained, along with the methods used to mitigate such excitation. We reduced the motional excitation below the results in Ref. [1] by a factor of approximately 50. The effect of a mu-metal shield on qubit coherence is also reported. Finally, we examined a method for exchanging energy between multiple motional modes on the few-quanta level, which could be useful for cooling motional modes without directly accessing the modes with lasers. These results establish how trapped ions can be transported in a large-scale quantum processor with high fidelity.

Microwave quantum logic gates for trapped ions

C. Ospelkaus, U. Warring, Y. Colombe, K. R. Brown, J. M. Amini, D. Leibfried [1], D. J. Wineland [1]

Abstract

Control over physical systems at the quantum level is a goal shared by scientists in fields as diverse as metrology, information processing, simulation and chemistry. For trapped atomic ions, the quantized motional and internal degrees of freedom can be coherently manipulated with laser light. Similar control is difficult to achieve with radio frequency or microwave radiation because the essential coupling between internal degrees of freedom and motion requires significant field changes over the extent of the atoms' motion. The field gradients are negligible at these frequencies for freely propagating fields; however, stronger gradients can be generated in the near-field of microwave currents in structures smaller than the free-space wavelength. In the experiments reported here, we coherently manipulate the internal quantum states of the ions on time scales of 20 ns. We also generate entanglement between the internal degrees of freedom of two atoms with a gate operation suitable for general quantum computation. We implement both operations through the magnetic fields from microwave currents in electrodes that are integrated into the micro-fabricated trap structure and create an entangled state with fidelity 76(3) %. This approach, where the quantum control mechanism is integrated into the trapping device in a scalable manner, can potentially benefit quantum information processing, simulation and spectroscopy.

Single-qubit-gate error below 10^-4 in a trapped ion

K. R. Brown [1], A. C. Wilson [1], Y. Colombe [1], C. Ospelkaus [1], A. M. Meier [1], E. Knill [1], D. Leibfried [1], D. J. Wineland [1]

Abstract

With a 9Be+ trapped-ion hyperfine-states qubit, we demonstrate an error probability per randomized single-qubit gate of 2.0(2) x 10^-5, below the threshold estimate of 10^-4 commonly considered sufficient for fault-tolerant quantum computing. The 9Be+ ion is trapped above a microfabricated surface-electrode ion trap and is manipulated with microwaves applied to a trap electrode. The achievement of low single-qubit-gate errors is an essential step toward the construction of a scalable quantum computer.

Coupled quantized mechanical oscillators

K. R. Brown [1], C. Ospelkaus [1], Y. Colombe [1], A. C. Wilson [1], D. Leibfried [1], D. J. Wineland [1]

Abstract

The harmonic oscillator is one of the simplest physical systems but also one of the most fundamental. It is ubiquitous in nature, often serving as an approximation for a more complicated system or as a building block in larger models. Realizations of harmonic oscillators in the quantum regime include electromagnetic fields in a cavity [1-3] and the mechanical modes of a trapped atom [4] or macroscopic solid [5]. Quantized interaction between two motional modes of an individual trapped ion has been achieved by coupling through optical fields [6], and entangled motion of two ions in separate locations has been accomplished indirectly through their internal states [7]. However, direct controllable coupling between quantized mechanical oscillators held in separate locations has not been realized previously. Here we implement such coupling through the mutual Coulomb interaction of two ions held in trapping potentials separated by 40 um (similar work is reported in a related paper [8]). By tuning the confining wells into resonance, energy is exchanged between the ions at the quantum level, establishing that direct coherent motional coupling is possible for separately trapped ions. The system demonstrates a building block for quantum information processing and quantum simulation. More broadly, this work is a natural precursor to experiments in hybrid quantum systems, such as coupling a trapped ion to a quantized macroscopic mechanical or electrical oscillator [9-13].

Scalable ion traps for quantum information processing

J. M. Amini, H. Uys, J. H. Wesenberg, S. Seidelin, J. Britton, J. J. Bollinger, D. Leibfried, C. Ospelkaus, A. P. VanDevender, D. J. Wineland [1]

Abstract

We report on the design, fabrication, and preliminary testing of a 150 zone array built in a `surface-electrode' geometry microfabricated on a single substrate. We demonstrate transport of atomic ions between legs of a `Y'-type junction and measure the in-situ heating rates for the ions. The trap design demonstrates use of a basic component design library that can be quickly assembled to form structures optimized for a particular experiment.

Demonstration of a scalable, multiplexed ion trap for quantum information processing

D. R. Leibrandt [1], J. Labaziewicz [1], R. J. Clark [1], I. L. Chuang [1], R. J. Epstein [2], C. Ospelkaus [2], J. H. Wesenberg [2], J. J. Bollinger [2], D. Leibfried [2], D. J. Wineland [2], D. Stick [3], J. Sterk [3], C. Monroe [3], C. -S. Pai [4], Y. Low [4], R. Frahm [4], R. E. Slusher [5]

Abstract

A scalable, multiplexed ion trap for quantum information processing is fabricated and tested. The trap design and fabrication process are optimized for scalability to small trap size and large numbers of interconnected traps, and for integration of control electronics and optics. Multiple traps with similar designs are tested with Cd+, Mg+, and Sr+ ions at room temperature and with Sr+ at 6 K, with respective ion lifetimes of 90 s, 300 +/- 30 s, 56 +/- 6 s, and 4.5 +/- 1.1 hours. The motional heating rate for Mg+ at room temperature and a trap frequency of 1.6 MHz is measured to be 7 +/- 3 quanta per millisecond. For Sr+ at 6 K and 540 kHz the heating rate is measured to be 220 +/- 30 quanta per second.

High fidelity transport of trapped-ion qubits through an X-junction trap array

R. B. Blakestad, C. Ospelkaus [1], A. P. VanDevender, J. M. Amini, J. Britton [1], D. Leibfried [1], D. J. Wineland

Abstract

We report reliable transport of 9Be+ ions through a 2-D trap array that includes a separate loading/reservoir zone and an "X-junction". During transport the ion's kinetic energy in its local well increases by only a few motional quanta and internal-state coherences are preserved. We also examine two sources of energy gain during transport: a particular radio-frequency (RF) noise heating mechanism and digital sampling noise. Such studies are important to achieve scaling in a trapped-ion quantum information processor.

Trapped-ion quantum logic gates based on oscillating magnetic fields

C. Ospelkaus [1], C. E. Langer [1], J. M. Amini [1], K. R. Brown [1], D. Leibfried [1], D. J. Wineland [1]

Abstract

Oscillating magnetic fields and field gradients can be used to implement single-qubit rotations and entangling multi-qubit quantum gates for trapped-ion quantum information processing (QIP). With fields generated by currents in microfabricated surface-electrode traps, it should be possible to achieve gate speeds that are comparable to those of optically induced gates for realistic distances between the ion crystal and the electrode surface. Magnetic-field-mediated gates have the potential to significantly reduce the overhead in laser beam control and motional state initialization compared to current QIP experiments with trapped ions and will eliminate spontaneous scattering, a fundamental source of decoherence in laser-mediated gates.

Transport quantum logic gates for trapped ions

D. Leibfried [1], E. Knill [1], C. Ospelkaus [1], D. J. Wineland [1]

Abstract

Many efforts are currently underway to build a device capable of large scale quantum information processing (QIP). Whereas QIP has been demonstrated for a few qubits in several systems, many technical difficulties must be overcome in order to construct a large-scale device. In one proposal for large-scale QIP, trapped ions are manipulated by precisely controlled light pulses and moved through and stored in multizone trap arrays. The technical overhead necessary to precisely control both the ion geometrical configurations and the laser interactions is demanding. Here we propose methods that significantly reduce the overhead on laser beam control for performing single and multiple qubit operations on trapped ions. We show how a universal set of operations can be implemented by controlled transport of ions through stationary laser beams. At the same time, each laser beam can be used to perform many operations in parallel, potentially reducing the total laser power necessary to carry out QIP tasks. The overall setup necessary for implementing transport gates is simpler than for gates executed on stationary ions. We also suggest a transport-based two-qubit gate scheme utilizing microfabricated permanent magnets that can be executed without laser light.