Title :
High-temperature superconducting delay lines and filters on sapphire and thinned LaAlO/sub 3/ substrates
Author :
Liang, G.C. ; Withers, R.S. ; Cole, B.F. ; Garrison, S.M. ; Johansson, M.E. ; Ruby, W.S. ; Lyons, W.G.
Author_Institution :
Conductus Inc., Sunnyvale, CA, USA
Abstract :
The very low microwave surface resistance of high-temperature-superconductor (HTS) thin films allows the realization of microwave devices with performance superior to those made by conventional technology. Superconducting delay lines, for example, have very low propagation loss and dispersion. Long, low-loss, superconducting delay lines on both thinned LaAlO/sub 3/ and sapphire substrates are presented. Delay lines with 27- and 44-ns delay have been made, for the first time, on 5-cm-diameter 254- and 127- mu m-thick LaAlO/sub 3/ substrates, respectively. The insertion losses at 77 K and 6 GHz are 6 and 16 dB, respectively. Delay lines with 9-ns delay have, for the first time, been produced on M-plane sapphire substrates and demonstrate, at 77 K, an insertion loss of 1.0 dB at 6 GHz. A 2.5%-bandwidth 10 GHz four pole edge-coupled bandpass filter on M-plane sapphire substrates is also reported. The filter has minimum insertion loss of less than 0.5 dB at 9.75 GHz and 71 K.<>
Keywords :
band-pass filters; barium compounds; delay lines; high-temperature superconductors; losses; microwave filters; passive filters; superconducting junction devices; superconducting microwave devices; yttrium compounds; 1 dB; 127 micron; 16 dB; 254 micron; 27 ns; 44 ns; 5 cm; 6 GHz; 6 dB; 71 K; 77 K; 9 ns; 9.75 GHz; Al/sub 2/O/sub 3/; HTS thin film; LaAlO/sub 3/ substrates; M-plane sapphire substrates; YBaCuO; four pole edge-coupled bandpass filter; high-temperature-superconductor; insertion losses; microwave devices; microwave surface resistance; propagation loss; superconducting delay lines; Band pass filters; Delay effects; Delay lines; High temperature superconductors; Insertion loss; Microwave filters; Superconducting filters; Superconducting microwave devices; Superconducting thin films; Surface resistance;
Journal_Title :
Applied Superconductivity, IEEE Transactions on