Time-optimal thermalization of single-mode Gaussian states

Alberto Carlini, Andrea Mari, and Vittorio Giovannetti
Phys. Rev. A 90, 052324 – Published 17 November 2014

Abstract

We consider the problem of time-optimal control of a continuous bosonic quantum system subject to the action of a Markovian dissipation. In particular, we consider the case of a one-mode Gaussian quantum system prepared in an arbitrary initial state and which relaxes to the steady state due to the action of the dissipative channel. We assume that the unitary part of the dynamics is represented by Gaussian operations which preserve the Gaussian nature of the quantum state, i.e., arbitrary phase rotations, bounded squeezing, and unlimited displacements. In the ideal ansatz of unconstrained quantum control (i.e., when the unitary phase rotations, squeezing, and displacement of the mode can be performed instantaneously), we study how control can be optimized for speeding up the relaxation towards the fixed point of the dynamics and we analytically derive the optimal relaxation time. Our model has potential and interesting applications to the control of modes of electromagnetic radiation and of trapped levitated nanospheres.

  • Figure
  • Received 4 October 2014

DOI:https://doi.org/10.1103/PhysRevA.90.052324

©2014 American Physical Society

Authors & Affiliations

Alberto Carlini1,2, Andrea Mari2,3, and Vittorio Giovannetti2,3

  • 1Universita' del Piemonte Orientale, DISIT, I-Alessandria, Italy
  • 2NEST, Istituto di Nanoscienze-CNR, I-Pisa, Italy
  • 3Scuola Normale Superiore, I-Pisa, Italy

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Issue

Vol. 90, Iss. 5 — November 2014

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