Open-loop quantum control of small-size networks for high-order cumulants and cross-correlations sensing
arXiv:2401.05766 · doi:10.1038/s41598-024-67503-x
Abstract
Quantum control techniques represent one of the most efficient tools to attain high-fidelity quantum operations and a convenient approach for quantum sensing and quantum noise spectroscopy. In this work, we investigate dynamical decoupling while processing an entangling two-qubit gate based on an Ising-xx interaction, each qubit being affected by pure dephasing classical correlated 1/ f -noises. To evaluate the gate error, we used the Magnus expansion introducing generalized filter functions that describe decoupling while processing and allow us to derive an approximate analytic expression as a hierarchy of nested integrals of noise cumulants. The error is separated in contributions of Gaussian and non-Gaussian noise, the corresponding generalized filter functions being calculated up to the fourth order. By exploiting the properties of selected pulse sequences, we show that it is possible to extract the second-order statistics (spectrum and cross-spectrum) and to highlight non-Gaussian features contained in the fourth-order cumulant. We discuss the applicability of these results to state-of-the-art small networks based on solid-state platforms.
19 pages, 7 figures
References in corpus (26)
- Charge insensitive qubit design derived from the Cooper pair box
- 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
- Decoherence of flux qubits due to 1/f flux noise
- 1/f Flux Noise in Josephson Phase Qubits
- Low-frequency noise as a source of dephasing of a qubit
- Dephasing of a superconducting flux qubit
- Experimental noise filtering by quantum control
- Multiqubit Spectroscopy of Gaussian Quantum Noise
- Preserving entanglement and nonlocality in solid-state qubits by dynamical decoupling
- Dynamical suppression of telegraph and 1/f noise due to quantum bistable fluctuator
- Entanglement purification and protection in a superconducting quantum network
- Noise-correlation spectrum for a pair of spin qubits in silicon
- A Tutorial on Optimal Control and Reinforcement Learning methods for Quantum Technologies
- Evolution of Flux Noise in Superconducting Qubits with Weak Magnetic Fields
- Reinforcement learning-enhanced protocols for coherent population-transfer in three-level quantum systems
- Quantum Control in Qutrit Systems using Hybrid Rabi-STIRAP Pulses
- Spin-boson dynamics beyond conventional perturbation theories
- Dynamics of a qubit coupled to a broadened harmonic mode at finite detuning
- Effects of low-frequency noise cross-correlations in coupled superconducting qubits
- Learning Noise via Dynamical Decoupling of Entangled Qubits
- Resource-efficient digital characterization and control of classical non-Gaussian noise
- Spin-echo entanglement protection from random telegraph noise
- 1/f noise in quantum nanoscience
- Second spectrum of charge carrier density fluctuations in graphene due to trapping/detrapping processes