Alexandre C. Ricardo

Quantum computation over the vibrational modes of a single trapped ion

Alexandre C. Ricardo [1], Gubio G. de Lima [1], Amanda G. Valério, Tiago de S. Farias [1], Celso J. Villas-Boas [1]

Abstract

Continuous-variable quantum computing utilizes continuous parameters of a quantum system to encode information, promising efficient solutions to complex problems. Trapped-ion systems provide a robust platform with long coherence times and precise qubit control, enabling the manipulation of quantum information through its motional and electronic degrees of freedom. In this work, quantum operations that can be generated in trapped-ion systems are employed to investigate applications aimed at state preparation in continuous-variable quantum systems.

Warehouse optimization using a trapped-ion quantum processor

Alexandre C. Ricardo [1], Gabriel P. L. M. Fernandes [1], Amanda G. Valério, Tiago de S. Farias [1], Matheus da S. Fonseca [1], Nicolás A. C. Carpio, Paulo C. C. Bezerra [2], Christine Maier [3], Juris Ulmanis [3], Thomas Monz [3], Celso J. Villas-Boas [1]

Abstract

Warehouse optimization stands as a critical component for enhancing operational efficiency within the industrial sector. By strategically streamlining warehouse operations, organizations can achieve significant reductions in logistical costs such as the necessary footprint or traveled path, and markedly improve overall workflow efficiency including retrieval times or storage time. Despite the availability of numerous algorithms designed to identify optimal solutions for such optimization challenges, certain scenarios demand computational resources that exceed the capacities of conventional computing systems. In this context, we adapt a formulation of a warehouse optimization problem specifically tailored as a binary optimization problem and implement it in a trapped-ion quantum computer.

Trapped Ions as an Architecture for Quantum Computing

Gabriel P. L. M. Fernandes [1], Alexandre C. Ricardo [1], Fernando R. Cardoso [1], Celso J. Villas-Boas [1]

Abstract

In this paper we describe one of the most promising platforms for the construction of a universal quantum computer, which consists of a chain of $N$ ions trapped in a harmonic potential, whose internal states work out as qubits, and are coupled to collective vibrational modes of the chain. From such coupling, it is possible to build interactions between different ions of the chain, that is, qubit-qubit interactions that, together with individual operations on the ions, allow building a quantum computer as first proposed by Cirac and Zoller in the 1990s [Phys. Rev. Lett. 74, 4091 (1995)]. Here we discuss from the physics involved in trapping ions in electromagnetic potentials to the Hamiltonian engineering needed to generate a universal set of logic gates, fundamental for the execution of more complex quantum algorithms. Finally, we present the current state of the art of quantum computing in trapped ion systems, highlighting recent advances made by companies and government projects that use such architecture, such as IonQ and AQTION.