Time-resolved qubit readout via nonlinear Josephson inductance
arXiv:1105.1105 · doi:10.1088/1367-2630/13/9/093022
Abstract
We propose a generalisation of dispersive qubit readout which provides the time evolution of a flux qubit observable. Our proposal relies on the non-linear coupling of the qubit to a harmonic oscillator with high frequency, representing a dc-SQUID. Information about the qubit dynamics is obtained by recording the oscillator response to resonant driving and subsequent lock-in detection. The measurement process is simulated for the example of coherent qubit oscillations. This corroborates the underlying measurement relation and also reveals that the measurement scheme possesses low backaction and high fidelity.
16 pages, 3 figures
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Cited by in corpus (5)
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- Synchronization of Networked Jahn-Teller Systems in Circuit QED
- Non-Markovian qubit decoherence during dispersive readout
- On-Chip Photonic Transistor based on the Spike Synchronization in Circuit QED