T. Bastin

Deterministic generation of arbitrary symmetric states and entanglement classes

L. Lamata [1,2,3], C. E. Lopez, B. P. Lanyon [4], T. Bastin [5], J. C. Retamal [2,3], E. Solano [1,6]

Abstract

We propose a method to generate arbitrary symmetric states of N qubits, which can be easily associated with their entanglement classes. It is particularly suited to quantum optics systems like trapped ions or superconducting circuits. We encode each qubit in two metastable levels of the system and use a bosonic quantum bus for creating the states. The method is deterministic and relies on a sequence of selective unitary gates upon the qubits within the system coherence time.

Measure of phonon-number moments and motional quadratures through infinitesimal-time probing of trapped ions

T. Bastin, J. von Zanthier, E. Solano

Abstract

A method for gaining information about the phonon-number moments and the generalized nonlinear and linear quadratures in the motion of trapped ions (in particular, position and momentum) is proposed, valid inside and outside the Lamb-Dicke regime. It is based on the measurement of first time derivatives of electronic populations, evaluated at the motion-probe interaction time t=0. In contrast to other state-reconstruction proposals, based on measuring Rabi oscillations or dispersive interactions, the present scheme can be performed resonantly at infinitesimal short motion-probe interaction times, remaining thus insensitive to decoherence processes.