Murilo Henrique de Oliveira

Digital-Analog Counterdiabatic Quantum Optimization with Trapped Ions

Shubham Kumar [1], Narendra N. Hegade [1], Alejandro Gomez Cadavid [1,2], Murilo Henrique de Oliveira [1], Enrique Solano [1,3], F. Albarrán-Arriagada

Abstract

We introduce a hardware-specific, problem-dependent digital-analog quantum algorithm of a counterdiabatic quantum dynamics tailored for optimization problems. Specifically, we focus on trapped-ion architectures, taking advantage from global Mølmer-Sørensen gates as the analog interactions complemented by digital gates, both of which are available in the state-of-the-art technologies. We show an optimal configuration of analog blocks and digital steps leading to a substantial reduction in circuit depth compared to the purely digital approach. This implies that, using the proposed encoding, we can address larger optimization problem instances, requiring more qubits, while preserving the coherence time of current devices. Furthermore, we study the minimum gate fidelity required by the analog blocks to outperform the purely digital simulation, finding that it is below the best fidelity reported in the literature. To validate the performance of the digital-analog encoding, we tackle the maximum independent set problem, showing that it requires fewer resources compared to the digital case. This hybrid co-design approach paves the way towards quantum advantage for efficient solutions of quantum optimization problems.

Single-shot measurements of phonon number states using the Autler-Townes effect

Marion Mallweger [1], Murilo Henrique de Oliveira [2], Robin Thomm [1], Harry Parke [1], Natalia Kuk [1], Gerard Higgins [1,3], Romain Bachelard [2,4], Celso Jorge Villas-Boas [2], Markus Hennrich [1]

Abstract

We present a single-shot method to measure motional states in the number basis. The technique can be applied to systems with at least three non-degenerate energy levels which can be coupled to a linear quantum harmonic oscillator, such as in trapped ion experiments. The method relies on probing an Autler-Townes splitting that arises when two levels are strongly coupled via a phonon-number changing transition. We demonstrate the method using a single trapped ion and show that it may be used in a non-demolition fashion to prepare phonon number states. We also show how the Autler-Townes splitting can be used to measure phonon number distributions.