We analyze the backaction of homodyne detection and photodetection on superconducting qubits in circuit quantum electrodynamics. Although both measurement schemes give rise to backaction in the form of stochastic phase rotations, which leads to dephasing, we show that this can be perfectly undone provided that the measurement signal is fully accounted for. This result improves on an earlier one [Phys. Rev. A 82, 012329 (2010)], showing that the method suggested can be made to realize a perfect two-qubit parity measurement. We propose a benchmarking experiment on a single qubit to demonstrate the method using homodyne detection. By analyzing the limited measurement efficiency of the detector and bandwidth of the amplifier, we show that the p...
We present and demonstrate a general three-step method for extracting the quantum efficiency of disp...
We discuss the problem of estimating a frequency via N-qubit probes undergoing independent dephasing...
Quantum information processing is a key technology in the ongoing second quantum revolution, with a ...
We analyze the backaction of homodyne detection and photodetection on superconducting qubits in circ...
We analyze a two-qubit parity measurement based on dispersive readout in circuit quantum electrodyna...
We demonstrate the active suppression of transmon qubit dephasing induced by dispersive measurement,...
Real-time monitoring of a quantum state provides powerful tools for studying the backaction of quant...
We analyzea direct parity measurement of the state of three superconducting qubits in circuit quantu...
A quantum-nondemolition (QND) measurement is one which does not disturb the quantity it measures. An...
We investigate the quantum measurement physics of a system in which a phase-sensitive parametric amp...
We present a measurement protocol for a flux qubit coupled to a dc-Superconducting QUantum Interfere...
This work was supported by the National Basic Research Program of China (Grants No. 2014CB921200 and...
In modern circuit QED architectures, superconducting transmon qubits are measured via the state-depe...
We propose and analyze a physical implementation of two-qubit parity measurements as required for co...
The interaction between a superconducting circuit and its environment can cause decoherence. However...
We present and demonstrate a general three-step method for extracting the quantum efficiency of disp...
We discuss the problem of estimating a frequency via N-qubit probes undergoing independent dephasing...
Quantum information processing is a key technology in the ongoing second quantum revolution, with a ...
We analyze the backaction of homodyne detection and photodetection on superconducting qubits in circ...
We analyze a two-qubit parity measurement based on dispersive readout in circuit quantum electrodyna...
We demonstrate the active suppression of transmon qubit dephasing induced by dispersive measurement,...
Real-time monitoring of a quantum state provides powerful tools for studying the backaction of quant...
We analyzea direct parity measurement of the state of three superconducting qubits in circuit quantu...
A quantum-nondemolition (QND) measurement is one which does not disturb the quantity it measures. An...
We investigate the quantum measurement physics of a system in which a phase-sensitive parametric amp...
We present a measurement protocol for a flux qubit coupled to a dc-Superconducting QUantum Interfere...
This work was supported by the National Basic Research Program of China (Grants No. 2014CB921200 and...
In modern circuit QED architectures, superconducting transmon qubits are measured via the state-depe...
We propose and analyze a physical implementation of two-qubit parity measurements as required for co...
The interaction between a superconducting circuit and its environment can cause decoherence. However...
We present and demonstrate a general three-step method for extracting the quantum efficiency of disp...
We discuss the problem of estimating a frequency via N-qubit probes undergoing independent dephasing...
Quantum information processing is a key technology in the ongoing second quantum revolution, with a ...