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Quantum reservoir engineering and single qubit cooling

  • Yale University

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Résumé

Stabilizing a quantum system in a desired state has important implications in quantum information science. In control engineering, stabilization is usually achieved by the use of feedback. The closed-loop control paradigm consists of measuring the system in a nondestructive manner, analyzing in real-time the measurement output to estimate the dynamical state and finally, calculating a feedback law to stabilize the desired state. However, the rather short dynamical time-scales of most quantum systems impose important limitations on the complexity of real-time output signal analysis and retroaction. An alternative control approach for quantum state stabilization, bypassing a real-time analysis of output signal, is called reservoir engineering. In this paper, we start with a general description of quantum reservoir engineering. We then apply this method to stabilize the ground state (lowest energy state) of a single two-level quantum system. Applying the averaging theorem and some simple Lyapunov techniques, we prove the convergence of our proposed scheme. This scheme has recently been successfully implemented on a superconducting qubit and has led to a fast and reliable reset protocol for these qubits.

langue originaleAnglais
titre9th IFAC Symposium on Nonlinear Control Systems, NOLCOS 2013 - Proceedings
EditeurIFAC Secretariat
Pages424-429
Nombre de pages6
EditionPART 1
ISBN (imprimé)9783902823472
Les DOIs
étatPublié - 1 janv. 2013
Modification externeOui
Evénement9th IFAC Symposium on Nonlinear Control Systems, NOLCOS 2013 - Toulouse, France
Durée: 4 sept. 20136 sept. 2013

Série de publications

NomIFAC Proceedings Volumes (IFAC-PapersOnline)
nombrePART 1
Volume9
ISSN (imprimé)1474-6670

Une conférence

Une conférence9th IFAC Symposium on Nonlinear Control Systems, NOLCOS 2013
Pays/TerritoireFrance
La villeToulouse
période4/09/136/09/13

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