Joshua M. Wilson

Frequency-robust Mølmer-Sørensen gates via balanced contributions of multiple motional modes

Brandon P. Ruzic [1], Matthew N. H. Chow [1,2,3], Ashlyn D. Burch [1], Daniel Lobser [1], Melissa C. Revelle [1], Joshua M. Wilson [1], Christopher G. Yale [1], Susan M. Clark [1]

Abstract

In this work, we design and implement frequency-robust Molmer-Sorensen gates on a linear chain of trapped ions, using Gaussian amplitude modulation and a constant laser frequency. We select this frequency to balance the entanglement accumulation of all motional modes during the gate to produce a strong robustness to frequency error, even for long ion chains. We demonstrate this technique on a three-ion chain, achieving $<\,1\%$ reduction from peak fidelity over a $20\,$kHz range of frequency offset, and we analyze the performance of this gate design through numerical simulations on chains of two to 33 ions.

In situ detection of RF breakdown on microfabricated surface ion traps

Joshua M. Wilson [1], Julia N. Tilles [1], Raymond A. Haltli [1], Eric Ou [1], Matthew G. Blain [1], Susan M. Clark [1], Melissa C. Revelle

Abstract

Microfabricated surface ion traps are a principle component of many ion-based quantum information science platforms. The operational parameters of these devices are pushed to the edge of their physical capabilities as the experiments strive for increasing performance. When the applied radio-frequency (RF) voltage is increased too much, the devices can experience damaging electric discharge events known as RF breakdown. We introduce two novel techniques for in situ detection of RF breakdown, which we implemented while characterizing the breakdown threshold of surface ion traps produced at Sandia National Laboratories. In these traps, breakdown did not always occur immediately after increasing the RF voltage, but often minutes or even hours later. This result is surprising in the context of the suggested mechanisms for RF breakdown in vacuum. Additionally, the extent of visible damage caused by breakdown events increased with applied voltage. To minimize the probability for damage when RF power is first applied to a device, our results strongly suggest that the voltage should be ramped up over the course of several hours and monitored forbreakdown.

Engineering the Quantum Scientific Computing Open User Testbed (QSCOUT): Design details and user guide

Susan M. Clark [1], Daniel Lobser [1], Melissa Revelle [1], Christopher G. Yale [1], David Bossert [1], Ashlyn D. Burch, Matthew N. Chow [1,2,3], Craig W. Hogle [1], Megan Ivory [1], Jessica Pehr [1,4], Bradley Salzbrenner [1], Daniel Stick [1], William Sweatt [1], Joshua M. Wilson [1], Edward Winrow [1], Peter Maunz [1,4]

Abstract

The Quantum Scientific Computing Open User Testbed (QSCOUT) at Sandia National Laboratories is a trapped-ion qubit system designed to evaluate the potential of near-term quantum hardware in scientific computing applications for the US Department of Energy (DOE) and its Advanced Scientific Computing Research (ASCR) program. Similar to commercially available platforms, most of which are based on superconducting qubits, it offers quantum hardware that researchers can use to perform quantum algorithms, investigate noise properties unique to quantum systems, and test novel ideas that will be useful for larger and more powerful systems in the future. However, unlike most other quantum computing testbeds, QSCOUT uses trapped $^{171}$Yb$^{+}$ ions as the qubits, provides full connectivity between qubits, and allows both quantum circuit and low-level pulse control access to study new modes of programming and optimization. The purpose of this manuscript is to provide users and the general community with details of the QSCOUT hardware and its interface, enabling them to take maximum advantage of its capabilities.