Title :
RF power dependence study of large area YBCO thin films
Author :
Zhengxiang Ma ; De Obaldia, E. ; Hampel, G. ; Polakos, P. ; Mankiewich, P. ; Batlogg, B. ; Prusseit, W. ; Kinder, H. ; Anderson, A. ; Oates, D.E. ; Ono, R. ; Beall, J.
Author_Institution :
Lucent Technols., AT&T Bell Labs., Murray Hill, NJ, USA
fDate :
6/1/1997 12:00:00 AM
Abstract :
In an effort to develop HTS superconducting filters with sufficient power handling capability for PCS (Personal Communication Services) base station transmit applications, we have undertaken a study of the power dependence of large area YBCO thin films on LaAlO/sub 3/ substrates. We employed a coplanar-wave-guide (CPW) resonator technique to obtain the changes of loss and inductance versus circulating microwave currents in the films. Data have been collected on uniform large area (2" diameter) films grown by coevaporation and off-axis sputtering techniques under varying deposition conditions. We found correlations between the RF power dependence and other film properties such as penetration depth and crystal structure. The most intrinsic sample, from the coevaporation technique, characterized by the smallest penetration depth, good orthorhombicity and absence of tetragonal phase, shows the least amount of nonlinearity. Such correlations can be used to prescreen films for fabrication and monitor the film production line. However, films from coevaporation and off-axis sputtering show very distinct power dependent behaviors.
Keywords :
barium compounds; high-temperature superconductors; microwave filters; penetration depth (superconductivity); superconducting microwave devices; superconducting thin films; yttrium compounds; HTS superconducting filters; LaAlO/sub 3/ substrates; Personal Communication Services; RF power dependence; YBCO thin films; YBa/sub 2/Cu/sub 3/O/sub 7/; base station transmit application; circulating microwave currents; coevaporation; coplanar-wave-guide resonator technique; crystal structure; inductance; loss; orthorhombicity; penetration depth; power handling capability; sputtering; Base stations; High temperature superconductors; Personal communication networks; Radio frequency; Sputtering; Substrates; Superconducting filters; Superconducting thin films; Transistors; Yttrium barium copper oxide;
Journal_Title :
Applied Superconductivity, IEEE Transactions on