Near-field localization of the boson peak on tantalum films for superconducting quantum devices
arXiv:2302.14316 · doi:10.1021/acs.jpclett.3c00850
Abstract
Superconducting circuits are among the most advanced quantum computing technologies, however their performance is currently limited by losses found in surface oxides and disordered materials. Here, we identify and spatially localize a near-field signature of loss centers on tantalum films using terahertz scattering-type scanning near-field optical microscopy (s-SNOM). Making use of terahertz nanospectroscopy, we observe a localized excess vibrational mode around 0.5 THz and identify this resonance as the boson peak, a signature of amorphous materials. Grazing-incidence wide-angle x-ray scattering (GIWAXS) shows that oxides on freshly solvent-cleaned samples are amorphous, whereas crystalline phases emerge after aging in air. By localizing defect centers at the nanoscale, our characterization techniques and results will inform the optimization of fabrication procedures for new low-loss superconducting circuits.
15 pages including supplement. 13 figures (4 in main text, 9 in supplement)
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Cited by in corpus (3)
- Correlating Superconducting Qubit Performance Losses to Sidewall Near-Field Scattering via Terahertz Nanophotonics
- Phonon-confinement theory of thermal conductivity in ultrathin silicon films
- Investigation of tantalum films growth for coplanar resonators with internal quality factors above ten million