J. Kim

Benchmarking an 11-qubit quantum computer

K. Wright [1], K. M. Beck [1], S. Debnath [1], J. M. Amini [1], Y. Nam [1], N. Grzesiak [1], J. -S. Chen [1], N. C. Pisenti [1], M. Chmielewski [1,2], C. Collins [1], K. M. Hudek [1], J. Mizrahi [1], J. D. Wong-Campos [1], S. Allen [1], J. Apisdorf [1], P. Solomon [1], M. Williams [1], A. M. Ducore [1], A. Blinov [1], S. M. Kreikemeier [1], V. Chaplin [1], M. Keesan [1], C. Monroe [1,2], J. Kim [1,3]

Abstract

The field of quantum computing has grown from concept to demonstration devices over the past 20 years. Universal quantum computing offers efficiency in approaching problems of scientific and commercial interest, such as factoring large numbers, searching databases, simulating intractable models from quantum physics, and optimizing complex cost functions. Here, we present an 11-qubit fully-connected, programmable quantum computer in a trapped ion system composed of 13 $^{171}$Yb$^{+}$ ions. We demonstrate average single-qubit gate fidelities of 99.5$\%$, average two-qubit-gate fidelities of 97.5$\%$, and state preparation and measurement errors of 0.7$\%$. To illustrate the capabilities of this universal platform and provide a basis for comparison with similarly-sized devices, we compile the Bernstein-Vazirani (BV) and Hidden Shift (HS) algorithms into our native gates and execute them on the hardware with average success rates of 78$\%$ and 35$\%$, respectively. These algorithms serve as excellent benchmarks for any type of quantum hardware, and show that our system outperforms all other currently available hardware.

Co-Designing a Scalable Quantum Computer with Trapped Atomic Ions

K. R. Brown, J. Kim [2], C. Monroe [3]

Abstract

The first generation of quantum computers are on the horizon, fabricated from quantum hardware platforms that may soon be able to tackle certain tasks that cannot be performed or modelled with conventional computers. These quantum devices will not likely be universal or fully programmable, but special-purpose processors whose hardware will be tightly co-designed with particular target applications. Trapped atomic ions are a leading platform for first generation quantum computers, but are also fundamentally scalable to more powerful general purpose devices in future generations. This is because trapped ion qubits are atomic clock standards that can be made identical to a part in 10^15, and their quantum circuit connectivity can be reconfigured through the use of external fields, without modifying the arrangement or architecture of the qubits themselves. In this article we show how a modular quantum computer of any size can be engineered from ion crystals, and how the wiring between ion trap qubits can be tailored to a variety of applications and quantum computing protocols.

Individual addressing of trapped $^{171}$Yb$^+$ ion qubits using a MEMS-based beam steering system

S. Crain [1], E. Mount [1], S. Baek [1], J. Kim [1]

Abstract

The ability to individually manipulate the increasing number of qubits is one of the many challenges towards scalable quantum information processing with trapped ions. Using micro-mirrors fabricated with micro-electromechanical systems (MEMS) technology, we focus laser beams on individual ions in a linear chain and steer the focal point in two dimensions. We demonstrate sequential single qubit gates on multiple $^{171}$Yb$^+$ qubits and characterize the gate performance using quantum state tomography. Our system features negligible crosstalk to neighboring ions ($< 3\times 10^{-4}$), and switching speed comparable to typical single qubit gate times ($<$ 2 $μ$s).

Large Scale Modular Quantum Computer Architecture with Atomic Memory and Photonic Interconnects

C. Monroe [1], R. Raussendorf [2], A. Ruthven [2], K. R. Brown, P. Maunz [4], L. -M. Duan [5], J. Kim [4]

Abstract

The practical construction of scalable quantum computer hardware capable of executing non-trivial quantum algorithms will require the juxtaposition of different types of quantum systems. We analyze a modular ion trap quantum computer architecture with a hierarchy of interactions that can scale to very large numbers of qubits. Local entangling quantum gates between qubit memories within a single register are accomplished using natural interactions between the qubits, and entanglement between separate registers is completed via a probabilistic photonic interface between qubits in different registers, even over large distances. We show that this architecture can be made fault-tolerant, and demonstrate its viability for fault-tolerant execution of modest size quantum circuits.