Self-heating hotspots in superconducting thin-film microbridges
- 1 September 1974
- journal article
- Published by AIP Publishing in Journal of Applied Physics
- Vol. 45 (9), 4054-4066
- https://doi.org/10.1063/1.1663912
Abstract
Heating effects in both long and short superconducting thin‐film microbridges are described and analyzed. Except near Tc at low voltages where superconducting quantum processes occur, all of our experimental dc I‐V characteristics can be satisfactorily understood on the basis of a simple model of a localized normal hotspot maintained by Joule heating. We consider approximations appropriate to the cases of long bridges, short bridges, and bridges coupled to microwave radiation. The analysis leads to analytic expressions for the I‐V characteristics which agree well with the experimental data. We show that the formation of such a hotspot is the dominant cause of the hysteresis observed in the I‐V characteristics at low temperatures. We also show that the growth of such a hotspot imposes a high‐voltage limit on the ac Josephson effect in these devices, and we compare the importance of such heating effects at high voltages in various types of superconducting weak links.Keywords
This publication has 33 references indexed in Scilit:
- Proximity effect bridge and superconducting microcircuitryJournal of Applied Physics, 1973
- Josephson junction analog and quasiparticle-pair currentApplied Physics Letters, 1973
- Charge Conservation and Chemical Potentials in Time-Dependent Ginzburg-Landau TheoryPhysical Review Letters, 1971
- Dynamics of small superconductorsPhysica, 1971
- Current-Phase Relationship in Short Superconducting Weak LeansPhysical Review Letters, 1970
- Thermal Resistivity at Interfaces between Metal and Dielectric Films at 1.5° to 4.2°KJournal of Applied Physics, 1966
- Thermal Resistance at Indium-Sapphire Boundaries between 1.1 and 2.1°KPhysical Review B, 1964
- Thermal and electrodynamic aspects of the superconductive transition processSolid-State Electronics, 1960
- A new type of bistable element involving thermal propagation of a normal region in a thin superconducting filmSolid-State Electronics, 1960
- Thermal Propagation Effect in Thin Superconducting FilmsPhysical Review Letters, 1958