J. Piilo

Simulating quantum Brownian motion with single trapped ions

S. Maniscalco [1,2,3], J. Piilo, F. Intravaia [4], F. Petruccione [5,6], A. Messina [1]

Abstract

We study the open system dynamics of a harmonic oscillator coupled with an artificially engineered reservoir. We single out the reservoir and system variables governing the passage between Lindblad type and non-Lindblad type dynamics of the reduced system's oscillator. We demonstrate the existence of conditions under which virtual exchanges of energy between system and reservoir take place. We propose to use a single trapped ion coupled to engineered reservoirs in order to simulate quantum Brownian motion.

Quantum theory of heating of a single trapped ion

F. Intravaia [1], S. Maniscalco [1], J. Piilo [2], A. Messina [1]

Abstract

The heating of trapped ions due to the interaction with a {\it quantized environment} is studied {\it without performing the Born-Markov approximation}. A generalized master equation local in time is derived and a novel theoretical approach to solve it analytically is proposed. Our master equation is in the Lindblad form with time dependent coefficients, thus allowing the simulation of the dynamics by means of the Monte Carlo Wave Function (MCWF) method.