J. F. Poyatos

Complete Characterization of a Quantum Process: the Two-Bit Quantum Gate

J. F. Poyatos [1], J. I. Cirac [1], P. Zoller [2]

Abstract

We show how to fully characterize a quantum process in an open quantum system. We particularize the procedure to the case of a universal two-qubit gate in a quantum computer. We illustrate the method with a numerical simulation of a quantum gate in the ion trap quantum computer.

Quantum Reservoir Engineering

J. F. Poyatos, J. I. Cirac, P. Zoller [1]

Abstract

We show how to design different couplings between a single ion trapped in a harmonic potential and an environment. This will provide the basis for the experimental study of the process of decoherence in a quantum system. The coupling is due to the absorption of a laser photon and subsequent spontaneous emission. The variation of the laser frequencies and intensities allows one to ``engineer'' the coupling and select the master equation describing the motion of the ion.

Motion Tomography of a single trapped ion

J. F. Poyatos [1], R. Walser [1], J. I. Cirac [1], P. Zoller [1], R. Blatt [2]

Abstract

A method for the experimental reconstruction of the quantum state of motion for a single trapped ion is proposed. It is based on the measurement of the ground state population of the trap after a sudden change of the trapping potential. In particular, we show how the Q function and the quadrature distribution can be measured directly. In an example we demonstrate the principle and analyze the sensibility of the reconstruction process to experimental uncertainties as well as to finite grid limitations. Our method is not restricted to the Lamb-Dicke Limit and works in one or more dimensions.

Trapped ions in the strong excitation regime: ion interferometry and non--classical states

J. F. Poyatos [1], J. I. Cirac [1], R. Blatt [2], P. Zoller [3]

Abstract

The interaction of a trapped ion with a laser beam in the strong excitation regime is analyzed. In this regime, a variety of non--classical states of motion can be prepared either by using laser pulses of well defined area, or by an adiabatic passage scheme based on the variation of the laser frequency. We show how these states can be used to investigate fundamental properties of quantum mechanics. We also study possible applications of this system to build an ion interferometer.