Dynamics of Gate-Controlled Superconducting Dayem Bridges (2405.07377v1)
Abstract: Local control of superconducting circuits by high-impedance electrical gates offers potential advantages in superconducting logic, quantum processing units, and cryoelectronics. Recent experiments have reported gate-controlled supercurrent in Dayem bridges made of metallic superconductors, mediated by direct current leakage, out-of-equilibrium phonons, or possibly other mechanisms. However, a time-domain characterization of this effect has been lacking. Here, we integrate Dayem bridges made of Niobium on Silicon into coplanar-waveguide resonators, and measure the effect of the gate voltage at steady state and during pulsed operation. We consider two types of arrangements for the gate: a side-coupled gate and a remote injector. In both cases, we observe sizable changes in the real and the imaginary part of the constriction's impedance for gate voltages of the order of 1 V. However, we find striking differences in the time-domain dynamics, with the remote injector providing a faster and more controlled response. Our results contribute to our understanding of gate-controlled superconducting devices and their suitability for applications.
- J. R. Clem and K. K. Berggren, Geometry-dependent critical currents in superconducting nanocircuits, Physical Review B 84, 174510 (2011).
- C. Puglia, G. De Simoni, and F. Giazotto, Gate Control of Superconductivity in Mesoscopic All-Metallic Devices, Materials 14, 1243 (2021).
- C. M. Wilson, L. Frunzio, and D. E. Prober, Time-Resolved Measurements of Thermodynamic Fluctuations of the Particle Number in a Nondegenerate Fermi Gas, Physical Review Letters 87, 067004 (2001).
- A. N. McCaughan and K. K. Berggren, A Superconducting-Nanowire Three-Terminal Electrothermal Device, Nano Letters 14, 5748 (2014).
- A. D. Semenov, G. N. Gol’tsman, and A. A. Korneev, Quantum detection by current carrying superconducting film, Physica C: Superconductivity 351, 349 (2001).