Dispersive measurements of superconducting qubit coherence with a fast latching readout
- 23 February 2006
- journal article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 73 (5)
- https://doi.org/10.1103/physrevb.73.054510
Abstract
The "quantronium" is a superconducting qubit consisting of a split Cooper pair box in which a large tunnel junction is inserted. This circuit has a special bias point where the Larmor frequency is, to first order, insensitive to fluctuations in the bias parameters -- the charge of the box island and the phase of the large junction. At this optimal working point, the state of the qubit can be determined by dispersive measurements that probe the second derivative of the state energy with respect to these bias parameters. We use the quantronium phase degree of freedom to perform a non-linear, dispersive measurement of its inductive response using bifurcation amplification. This novel readout projects the state of the qubit in a few nanoseconds, and its latching property allows us to record the resulting information in a few hundred nanoseconds. We have measured, using this technique, Rabi oscillations and Ramsey fringes with an improved signal to noise ratio and contrast. The speed of this new readout scheme also opens the door for a new class of experiments which would characterize the relaxation processes associated with the measurement protocol.Comment: updated references and revised discussion of experimental resultKeywords
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This publication has 24 references indexed in Scilit:
- Dephasing of a Superconducting Qubit Induced by Photon NoisePhysical Review Letters, 2005
- Decoherence in Josephson Qubits from Dielectric LossPhysical Review Letters, 2005
- Flux qubits and readout device with two independent flux linesPhysical Review B, 2005
- Coherent control of a flux qubit by phase-shifted resonant microwave pulsesApplied Physics Letters, 2005
- Approaching Unit Visibility for Control of a Superconducting Qubit with Dispersive ReadoutPhysical Review Letters, 2005
- Simultaneous State Measurement of Coupled Josephson Phase QubitsScience, 2005
- NMR-like Control of a Quantum Bit Superconducting CircuitPhysical Review Letters, 2004
- Coherent dynamics of a flux qubit coupled to a harmonic oscillatorNature, 2004
- Decoherence in Josephson-junction qubits due to critical-current fluctuationsPhysical Review B, 2004
- Manipulating the Quantum State of an Electrical CircuitScience, 2002