Alessandro S. Villar

Continuous variables quantum computation over the vibrational modes of a single trapped ion

Luis Ortiz-Gutiérrez, Bruna Gabrielly [1], Luis F. Muñoz, Kainã T. Pereira, Jefferson G. Filgueiras [1], Alessandro S. Villar

Abstract

We consider the quantum processor based on a chain of trapped ions to propose an architecture wherein the motional degrees of freedom of trapped ions (position and momentum) could be exploited as the computational Hilbert space. We adopt a continuous-variables approach to develop a toolbox of quantum operations to manipulate one or two vibrational modes at a time. Together with the intrinsic non-linearity of the qubit degree of freedom, employed to mediate the interaction between modes, arbitrary manipulation and readout of the ionic wave function could be achieved.

Generation of Kerr non-Gaussian motional states of trapped ions

Magdalena Stobińska, Alessandro S. Villar, Gerd Leuchs

Abstract

Non-Gaussian states represent a powerful resource for quantum information protocols in the continuous variables regime. Cat states, in particular, have been produced in the motional degree of freedom of trapped ions by controlled displacements dependent on the ionic internal state. An alternative method harnesses the Kerr nonlinearity naturally existent in this kind of system. We present detailed calculations confirming its feasibility for typical experimental conditions. Additionally, this method permits the generation of complex non-Gaussian states with negative Wigner functions. Especially, superpositions of many coherent states are achieved at a fraction of the time necessary to produce the cat state.