Accuracy of dynamical-decoupling-based spectroscopy of Gaussian noise
arXiv:1708.05535 · doi:10.1103/PhysRevA.97.032101
Abstract
The fundamental assumption of dynamical decoupling based noise spectroscopy is that the coherence decay rate of qubit (or qubits) driven with a sequence of many pulses, is well approximated by the environmental noise spectrum spanned on frequency comb defined by the sequence. Here we investigate the precise conditions under which this commonly used spectroscopic approach is quantitatively correct. To this end we focus on two representative examples of spectral densities: the long-tailed Lorentzian, and finite-ranged Gaussian---both expected to be encountered when using the qubit for nano-scale nuclear resonance imaging. We have found that, in contrast to Lorentz spectrum, for which the corrections to the standard spectroscopic formulas can easily be made negligible, the spectra with finite range are more challenging to reconstruct accurately. For Gaussian line-shape of environmental spectral density, direct application of the standard dynamical decoupling based spectroscopy leads to erroneous attribution of long-tail behavior to the reconstructed spectrum. Fortunately, artifacts such as this, can be completely avoided with the simple extension to standard reconstruction method.
20 pages, 9 figures, 2 appendices
References in corpus (19)
- Dynamical decoupling and noise spectroscopy with a superconducting flux qubit
- Universal dynamical decoupling of a single solid-state spin from a spin bath
- Optimized Dynamical Decoupling in a Model Quantum Memory
- How to Enhance Dephasing Time in Superconducting Qubits
- Sub-millihertz magnetic spectroscopy with a nanoscale quantum sensor
- Quantum sensing with arbitrary frequency resolution
- Nanoscale NMR Spectroscopy and Imaging of Multiple Nuclear Species
- Spectroscopy of Surface-Induced Noise Using Shallow Spins in Diamond
- Single Ion Quantum Lock-In Amplifier
- Optimal Dynamical Decoherence Control of a Qubit
- Scanning probe microscopy with chemical contrast by nanoscale nuclear magnetic resonance
- Multiqubit Spectroscopy of Gaussian Quantum Noise
- Environmental noise spectroscopy with qubits subjected to dynamical decoupling
- Optimal pulse spacing for dynamical decoupling in the presence of a purely-dephasing spin-bath
- Spurious harmonic response of multipulse quantum sensing sequences
- Direct Measurement of the System-Environment Coupling as a Tool For Understanding Decoherence and Dynamical Decoupling
- Single Spin Magnetic Resonance
- Electron spin as a spectrometer of nuclear spin noise and other fluctuations
- Application of optimal band-limited control protocols to quantum noise sensing
Cited by in corpus (16)
- Optimally band-limited spectroscopy of control noise using a qubit sensor
- Extending comb-based spectral estimation to multiaxis quantum noise
- The dynamical-decoupling-based spatiotemporal noise spectroscopy
- Trispectrum reconstruction of non-Gaussian noise
- Noise Sensing via Stochastic Quantum Zeno
- Measuring trajectories of environmental noise
- Deep learning enhanced noise spectroscopy of a spin qubit environment
- Fourier Transform Noise Spectroscopy
- Relationship between subjecting the qubit to dynamical decoupling and to a sequence of projective measurements
- Spectroscopy of classical environmental noise with a qubit subjected to projective measurements
- Self-consistent noise characterization of quantum devices
- Qubit-environment entanglement outside of pure decoherence: hyperfine interaction
- Digital noise spectroscopy with a quantum sensor
- Random Pulse Sequences for Qubit Noise Spectroscopy
- Transition between continuous and discrete spectra in dynamical-decoupling noise spectroscopy
- Decoherence reduction via continuous dynamical decoupling: Analytical study of the role of the noise spectrum