Precision measurement of the microwave dielectric loss of sapphire in the quantum regime with parts-per-billion sensitivity
arXiv:2206.14334 · doi:10.1103/PhysRevApplied.19.034064
Abstract
Dielectric loss is known to limit state-of-the-art superconducting qubit lifetimes. Recent experiments imply upper bounds on bulk dielectric loss tangents on the order of parts-per-billion, but because these inferences are drawn from fully fabricated devices with many loss channels, they do not definitively implicate or exonerate the dielectric. To resolve this ambiguity, we have devised a measurement method capable of separating and resolving bulk dielectric loss with a sensitivity at the level of parts per billion. The method, which we call the dielectric dipper, involves the in-situ insertion of a dielectric sample into a high-quality microwave cavity mode. Smoothly varying the sample's participation in the cavity mode enables a differential measurement of the sample's dielectric loss tangent. The dielectric dipper can probe the low-power behavior of dielectrics at cryogenic temperatures, and does so without the need for any lithographic process, enabling controlled comparisons of substrate materials and processing techniques. We demonstrate the method with measurements of EFG sapphire, from which we infer a bulk loss tangent of and a substrate-air interface loss tangent of . For a typical transmon, this bulk loss tangent would limit device quality factors to less than million, suggesting that bulk loss is likely the dominant loss mechanism in the longest-lived transmons on sapphire. We also demonstrate this method on HEMEX sapphire and bound its bulk loss tangent to be less than . As this bound is about 3 times smaller than the bulk loss tangent of EFG sapphire, use of HEMEX sapphire as a substrate would lift the bulk dielectric coherence limit of a typical transmon qubit to several milliseconds.
8 pages, 5 figures, and 13 page appendix. Submitted revision synchronizes content with associated journal article, including the addition of figure 7 (methods of cavity measurement) and Appendix H (bounding magnetic bulk loss)
References in corpus (6)
- Charge insensitive qubit design derived from the Cooper pair box
- Characterization and Reduction of Capacitive Loss Induced by Sub-Micron Josephson Junction Fabrication in Superconducting Qubits
- Characterization and reduction of microfabrication-induced decoherence in superconducting quantum circuits
- Environmental Radiation Impact on Lifetimes and Quasiparticle Tunneling Rates of Fixed-Frequency Transmon Qubits
- Spin-Photon Interaction in a Cavity with Time-Reversal Symmetry Breaking
- Hybrid Electron Spin Resonance and Whispering Gallery Mode Resonance Spectroscopy of Fe3+ in Sapphire
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