Abstract
Josephson junctions (JJs) with layered Nb/MoGe electrodes were fabricated and characterized at 4.2 K. Mo0.75Ge0.25 is known to be a superconductor with the transition temperature of up to 7.4 K. It is essentially an amorphous material that has very uniform and smooth surface in thin-film form. This allowed us to fabricate high-quality all-MoGe Josephson junctions with very thin Al overlayer to form AlOx barrier [Supercond. Sci. Technol., vol. 35, Article no. 035008, 2022]. Here we report JJs with composite Nb/MoGe electrodes aiming at development of flux-flow-type Josephson oscillators operating at low frequencies suitable for qubit control. Using MoGe allows one to preserve a large effective magnetic penetration depth and a high kinetic inductance of the electrodes, which results in (i) a standing wave (Fiske) resonance to occur at lower frequencies, and (ii) in a higher impedance of the oscillator; the latter is important for matching it with other elements of the superconducting circuit. At the same time, using Nb as a part of the composite electrode allows one to maintain the critical parameters (critical current and voltage) of the JJ close to those of the Nb-based JJs. In addition, damping in hybrid Nb/MoGe JJs is lower than that in all-MoGe JJs, which results in a higher current of flux-flow steps, and potentially, in a higher microwave emission power.
Original language | English (US) |
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Article number | 1100304 |
Journal | IEEE Transactions on Applied Superconductivity |
Volume | 35 |
Issue number | 5 |
DOIs | |
State | Published - 2025 |
Funding
This work was supported in part by NSF under Grant DMR 1905742 and in part by the NSF DISCoVER Expedition Award under Grant CCF-2124453.
Keywords
- Flux-flow oscillators
- Josephson junctions
- superconducting microwave devices
ASJC Scopus subject areas
- Electronic, Optical and Magnetic Materials
- Condensed Matter Physics
- Electrical and Electronic Engineering