Impact of Absorption due to Zero-Field Splitting on Loss in Dielectrics: A Case Study in Sapphire
arXiv:2504.04610 · doi:10.1103/y43k-l6xr
Abstract
The coherence times of superconducting qubits are limited by loss mechanisms, whose microscopic origins have remained elusive. We propose a mechanism caused by transitions between zero-field-split states of paramagnetic impurities or defects. We derive the absorption cross section for a magnetic dipole transition and apply it to calculate the loss tangent. For Cr, Fe, and V impurities in sapphire, we find loss tangents at 4.5 GHz in the range of 10-10, comparable to the loss measured in experiments. This value suggests that magnetic loss may be a limiting factor in the coherence times of superconducting qubits.
References in corpus (8)
- Magnetic Dipole and Electric Quadrupole Transitions in the Trivalent Lanthanide Series: Calculated Emission Rates and Oscillator Strengths
- Microwave Dielectric Loss at Single Photon Energies and milliKelvin Temperatures
- Direct identification of dilute surface spins on AlO: Origin of flux noise in quantum circuits
- Disentangling Losses in Tantalum Superconducting Circuits
- Precision measurement of the microwave dielectric loss of sapphire in the quantum regime with parts-per-billion sensitivity
- Annealing reduces SiN microwave-frequency dielectric loss in superconducting resonators
- Dielectric Loss due to Charged-Defect Acoustic Phonon Emission
- Unconventional saturation effects at intermediate drive in a lossy cavity coupled to few emitters