Title :
Protecting Coherence and Entanglement by Quantum Feedback Controls
Author :
Zhang, Jing ; Wu, Re-Bing ; Li, Chun-Wen ; Tarn, Tzyh-Jong
Author_Institution :
Dept. of Autom., Tsinghua Univ., Beijing, China
fDate :
3/1/2010 12:00:00 AM
Abstract :
When a quantum system interacts with its environment, the so-called decoherence effect will normally destroy the coherence in the quantum state and the entanglement between its subsystems. We propose a feedback control strategy based on quantum weak measurements to protect coherence and entanglement of the quantum state against environmental disturbance. For a one-qubit quantum system under amplitude damping and dephasing decoherence channels, our strategy can preserve the coherence based on the measured information about the population difference between its two levels. For a two-qubit quantum system disentangled by independent amplitude damping and dephasing decoherence channels, the designed feedback control can preserve coherence between the ground state and the highest excited states by tuning the coupling strength between the two qubits, and at the same time minimize the loss of entanglement between the two qubits. As a consequence of dynamic symmetry, the generalization of these results derives the concept of control-induced decoherence-free observable subspace, for which several criteria are provided.
Keywords :
control system synthesis; quantum computing; state feedback; control induced decoherence free observable subspace; decoherence effect; dephasing decoherence channels; environmental disturbance; feedback control strategy; independent amplitude damping; protecting coherence; protecting entanglement; quantum feedback control; quantum weak measurement; qubit quantum system; Communication system control; Control systems; Damping; Feedback control; Information science; Open loop systems; Protection; Quantum computing; Quantum entanglement; Quantum mechanics; Decoherence suppression; entanglement protection; quantum control; quantum feedback control;
Journal_Title :
Automatic Control, IEEE Transactions on
DOI :
10.1109/TAC.2009.2039238