We demonstrate and contrast two approaches to the stabilization of qubit entanglement by feedback. Our demonstration is built on a feedback platform consisting of two superconducting qubits coupled to a cavity, which are measured by a nearly quantum-limited measurement chain and controlled by high-speed classical logic circuits. This platform is used to stabilize entanglement by two nominally distinct schemes: a “passive” reservoir engineering method and an “active” correction based on conditional parity measurements. In view of the instrumental roles that these two feedback paradigms play in quantum error correction and quantum control, we directly compare them on the same experimental setup. Furthermore, we show that a second layer of fee...
We consider the task of deterministically entangling two remote qubits using joint measurement and f...
The standard quantum formalism introduced at the undergraduate level treats measurement as an instan...
Circuit QED is a promising solid-state quantum computing architecture. It also has excellent potenti...
Superconducting circuits have recently risen to the forefront of the solid-state prototypes for quan...
Fault-tolerant quantum computing relies on the ability to detect and correct errors, which in quantu...
Superconducting circuits have recently risen to the forefront of the solid-state prototypes for quan...
Recent work has shown that the use of quantum feedback can significantly enhance both the speed and ...
We propose and analyze a protocol for stabilizing a maximally entangled state of two noninteracting ...
We study the correction of errors intervening in two qubits dissipating into their own environments....
We study the correction of errors intervening in two qubits dissipating into their own environments....
Superconducting quantum circuits provide a promising avenue for scalable quantum computation and sim...
We study the correction of errors intervening in two qubits dissipating into their own environments....
The advance of experimental techniques in circuit quantum electrodynamics over last decadehas made i...
The advance of experimental techniques in circuit quantum electrodynamics over last decadehas made i...
Quantum reservoir engineering is a powerful framework for autonomous quantum state preparation and e...
We consider the task of deterministically entangling two remote qubits using joint measurement and f...
The standard quantum formalism introduced at the undergraduate level treats measurement as an instan...
Circuit QED is a promising solid-state quantum computing architecture. It also has excellent potenti...
Superconducting circuits have recently risen to the forefront of the solid-state prototypes for quan...
Fault-tolerant quantum computing relies on the ability to detect and correct errors, which in quantu...
Superconducting circuits have recently risen to the forefront of the solid-state prototypes for quan...
Recent work has shown that the use of quantum feedback can significantly enhance both the speed and ...
We propose and analyze a protocol for stabilizing a maximally entangled state of two noninteracting ...
We study the correction of errors intervening in two qubits dissipating into their own environments....
We study the correction of errors intervening in two qubits dissipating into their own environments....
Superconducting quantum circuits provide a promising avenue for scalable quantum computation and sim...
We study the correction of errors intervening in two qubits dissipating into their own environments....
The advance of experimental techniques in circuit quantum electrodynamics over last decadehas made i...
The advance of experimental techniques in circuit quantum electrodynamics over last decadehas made i...
Quantum reservoir engineering is a powerful framework for autonomous quantum state preparation and e...
We consider the task of deterministically entangling two remote qubits using joint measurement and f...
The standard quantum formalism introduced at the undergraduate level treats measurement as an instan...
Circuit QED is a promising solid-state quantum computing architecture. It also has excellent potenti...