Flux noise in disordered spin systems
arXiv:2207.10033 · doi:10.1103/PhysRevB.106.144506
Abstract
Impurity spins randomly distributed at the surfaces and interfaces of superconducting wires are known to cause flux noise in Superconducting Quantum Interference Devices, providing a mechanism for decoherence in superconducting qubits. While flux noise is well characterised experimentally, the microscopic model underlying spin dynamics remains unknown. First-principles theories are too computationally expensive to capture spin diffusion over large length scales, third-principles approaches lump spin dynamics into a single phenomenological spin-diffusion operator that is not able to describe the quantum noise regime and connect to microscopic models and disorder scenarios. Here we propose an intermediate "second principles" method to describe general spin dissipation and flux noise in the quantum regime. It leads to the interpretation that flux noise arises from the density of paramagnon excitations at the edge of the wire, with paramagnon-paramagnon interactions leading to spin diffusion, and interactions between paramagnons and other degrees of freedom leading to spin energy relaxation. At high frequency we obtain an upper bound for flux noise, showing that the (super)Ohmic noise observed in experiments does not originate from interacting spin impurities. We apply the method to Heisenberg models in two dimensional square lattices with random distribution of vacancies and nearest-neighbour spins coupled by constant exchange. Numerical calculations of flux noise show that it follows the observed power law , with amplitude and exponent depending on temperature and inhomogeneities. These results are compared to experiments in niobium and aluminium devices. The method establishes a connection between flux noise experiments and microscopic Hamiltonians identifying relevant microscopic mechanisms and guiding strategies for reducing flux noise.
14 pages, 5 figures, published in Physical Review B
References in corpus (11)
- Supplementary information for "Quantum supremacy using a programmable superconducting processor"
- Dynamical decoupling and noise spectroscopy with a superconducting flux qubit
- Model for l/f Flux Noise in SQUIDs and Qubits
- Magnetism in SQUIDs at Millikelvin Temperatures
- Microscopic origin of low frequency flux noise in Josephson circuits
- Observation of classical-quantum crossover of 1/f flux noise and its paramagnetic temperature dependence
- Dangling-bond spin relaxation and magnetic 1/f noise from the amorphous-semiconductor/oxide interface: Theory
- Spin dynamics in a superconductor / ferromagnet proximity system
- Direct identification of dilute surface spins on AlO: Origin of flux noise in quantum circuits
- Probing High Frequency Noise with Macroscopic Resonant Tunneling
- Weakly Flux-Tunable Superconducting Qubit
Cited by in corpus (4)
- Evolution of Flux Noise in Superconducting Qubits with Weak Magnetic Fields
- The effects of disorder in superconducting materials on qubit coherence
- Model for 1/f Flux noise in Superconducting Aluminum Devices: Impact of External Magnetic Fields
- Nonequilibrium Quasiparticles in Superconducting Circuits: Energy Relaxation, Charge and Flux Noise