Millikelvin Nb nanoSQUID-embedded tunable resonator fabricated with a neon focused-ion-beam
Abstract
SQUID-embedded superconducting resonators are of great interest due to their potential for coupling highly scalable superconducting circuits with quantum memories based on solid-state spin ensembles. Such an application requires a high-Q, frequency-tunable resonator that is both resilient to magnetic field and able to operate at millikelvin temperatures. These requirements motivate the use of a higher Hc metal such as niobium; however, the challenge then becomes to sufficiently reduce the operating temperature. We address this by presenting a monolithic Nb nanoSQUID-embedded resonator, where neon focused-ion-beam fabrication of the nanoSQUID results in a device displaying frequency tunability at T=16 mK. In order to assess the applicability of the device for coupling to small spin clusters, we characterize the flux sensitivity as a function of microwave drive power and externally applied magnetic field and find that the noise is dominated by dielectric noise in the resonator. Finally, we discuss improvements to the device design that can dramatically improve the flux sensitivity, which highlights the promise of Nb SQUID-embedded resonators for hybrid superconductor-spin applications.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (6)
Jamie A. Potter
National Physical Laboratory 1 , Hampton Road, Teddington TW11 0LW,
Laith Meti
National Physical Laboratory 1 , Hampton Road, Teddington TW11 0LW,
Gemma Chapman
National Physical Laboratory 1 , Hampton Road, Teddington TW11 0LW,
Ed Romans
London Centre for Nanotechnology 2 , 17-19 Gordon Street, London WC1H 0AH,
John Gallop
National Physical Laboratory 1 , Hampton Road, Teddington TW11 0LW,
Ling Hao