Suppression of dephasing by qubit motion in superconducting circuits
arXiv:1509.00122 · doi:10.1103/PhysRevLett.116.010501
Abstract
We suggest and demonstrate a protocol which suppresses dephasing due to the low-frequency noise by qubit motion, i.e., transfer of the logical qubit of information in a system of physical qubits. The protocol requires only the nearest-neighbor coupling and is applicable to different qubit structures. We further analyze its effectiveness against noises with arbitrary correlations. Our analysis, together with experiments using up to three superconducting qubits, shows that for the realistic uncorrelated noises, qubit motion increases the dephasing time of the logical qubit as . In general, the protocol provides a diagnostic tool to measure the noise correlations.
5 pages with 3 embedded figures, plus supplementary information
References in corpus (6)
- Coupling Superconducting Qubits via a Cavity Bus
- Dynamical decoupling and noise spectroscopy with a superconducting flux qubit
- Coherent quantum state storage and transfer between two phase qubits via a resonant cavity
- Optimized Dynamical Decoupling in a Model Quantum Memory
- 1/f Flux Noise in Josephson Phase Qubits
- NSQUID arrays as conveyers of quantum information
Cited by in corpus (17)
- Quantum systems under frequency modulation
- Violating Bell's inequality with remotely-connected superconducting qubits
- Emulating anyonic fractional statistical behavior in a superconducting quantum circuit
- Error-Mitigated Quantum Metrology via Virtual Purification
- Dephasing-insensitive quantum information storage and processing with superconducting qubits
- -symmetric slowing-down of decoherence
- Quantum metrology beyond the classical limit under the effect of dephasing
- Synthesizing five-body interaction in a superconducting quantum circuit
- Experimental and theoretical analysis of noise strength and environmental correlation time for ensembles of nitrogen-vacancy centers in diamond
- Localizing fractional quasiparticles on graphene quantum hall antidots
- Nitrogen-Vacancy Center as Open-Quantum-System Simulator
- Transferring arbitrary d-dimensional quantum states of a superconducting qudit in circuit QED
- Frequency estimation under non-Markovian spatially correlated quantum noise: Restoring superclassical precision scaling
- Robust quantum sensing with strongly interacting probe systems
- Permanent spin currents in cavity-qubit systems
- Anti--symmetric Qubit: Decoherence and Entanglement Entropy
- Characterize noise correlation and enhance coherence via qubit motion