Title :
Switching Response of
to Simultaneous Application of Near-Critical Current, Field, and Temperature
Author :
Bulmer, John S. ; Rickel, Dwight G. ; Haugan, Timothy J.
Author_Institution :
Hyper Tech Res., Inc., Columbus, OH, USA
Abstract :
We injected a dc near-critical current through a yttrium-barium-copper oxide (YBCO) superconductor microbridge in the presence of a high pulsed ac magnetic field (10 MT/s up to 20 T) parallel to the dc current flow - the so-called Lorentz force free configuration. A transmitted RF signal probed the YBCO mixed state that followed the ac magnetic field cycles. Based on inflection points on this modulated RF signal, we found where the YBCO switched from a superconducting to normal (S-N) state. Injecting a dc near-critical current does not affect the S-N switch time or the S-N field point, at least 2° below the critical temperature, i.e., Tc. Rather, the injected dc current only suppresses the RF signal´s magnitude across its duration. At 5° below Tc, injecting a current does modify the S-N transition point and shorten the switch time. Applications for cryotron-like switches in superconducting magnetic energy storage devices are discussed.
Keywords :
barium compounds; critical currents; high-temperature superconductors; mixed state; superconducting critical field; superconducting magnet energy storage; superconducting transition temperature; yttrium compounds; Lorentz force free configuration; YBCO; critical temperature; cryotron-like switches; dc current flow; dc near-critical current; high pulsed ac magnetic field; inflection points; mixed state; superconducting magnetic energy storage devices; superconducting-normal state transitions; superconductor micro-bridge; switching response; transmitted RF signal; Magnetomechanical effects; Radio frequency; Superconducting magnetic energy storage; Superconducting magnets; Switches; Temperature measurement; Yttrium barium copper oxide; $ hbox{YBa}_{2}hbox{Cu}_{3}hbox{O}_{7 - x}$; Cryotrons; Lorentz force free; high pulsed magnetic field; superconducting to normal (SN) transition;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2013.2292116