Qubit metrology of ultralow phase noise using randomized benchmarking
arXiv:1411.2613 · doi:10.1103/PhysRevApplied.3.044009
Abstract
A precise measurement of dephasing over a range of timescales is critical for improving quantum gates beyond the error correction threshold. We present a metrological tool, based on randomized benchmarking, capable of greatly increasing the precision of Ramsey and spin echo sequences by the repeated but incoherent addition of phase noise. We find our SQUID-based qubit is not limited by flux noise at short timescales, but instead observe a telegraph noise mechanism that is not amenable to study with standard measurement techniques.
11 pages, 7 figures
References in corpus (20)
- Charge insensitive qubit design derived from the Cooper pair box
- Demonstration of Two-Qubit Algorithms with a Superconducting Quantum Processor
- Randomized Benchmarking of Quantum Gates
- State preservation by repetitive error detection in a superconducting quantum circuit
- Dynamical decoupling and noise spectroscopy with a superconducting flux qubit
- Robust randomized benchmarking of quantum processes
- High-fidelity preparation, gates, memory and readout of a trapped-ion quantum bit
- Superconducting qubit in waveguide cavity with coherence time approaching 0.1ms
- Decoherence of flux qubits due to 1/f flux noise
- Characterization of addressability by simultaneous randomized benchmarking
- Process verification of two-qubit quantum gates by randomized benchmarking
- 1/f Flux Noise in Josephson Phase Qubits
- Low-frequency noise as a source of dephasing of a qubit
- Low- and high-frequency noise from coherent two-level systems
- Magnetism in SQUIDs at Millikelvin Temperatures
- Photon Shot Noise Dephasing in the Strong-Dispersive Limit of Circuit QED
- Rotating-frame relaxation as a noise spectrum analyzer of a superconducting qubit undergoing driven evolution
- Quantifying the quantum gate fidelity of single-atom spin qubits in silicon by randomized benchmarking
- Randomized benchmarking of single and multi-qubit control in liquid-state NMR quantum information processing
- Dynamics of parametric fluctuations induced by quasiparticle tunneling in superconducting flux qubits
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