Title :
Platinum and palladium high-temperature transducers on langasite
Author :
Thiele, Jeremy A. ; Cunha, Mauricio Pereira da
Author_Institution :
Lab. for Surface Sci. & Technol., Maine Univ., Orono, ME, USA
fDate :
4/1/2005 12:00:00 AM
Abstract :
There is a pressing need for the fabrication of surface acoustic wave (SAW) devices capable of operating in harsh environments, at elevated temperature and pressure, or under high power conditions. These SAW devices operate as frequency-control elements, signal-processing filters, and pressure, temperature , and gas sensors. Applications include gas and oil wells, high-power duplexers in communication systems, and automobile and aerospace combustion engines. Under these high-temperature and power-operating conditions, which can reach several hundred degrees centigrade, the typically fabricated aluminum (Al) thin film interdigital transducer (IDT) fails due to electro and stress migration. This work reports on high temperature SAW transducers that have been designed, fabricated, and tested on langasite (LGS) piezoelectric substrates. Platinum (Pt) and palladium (Pd) (melting points at 1769/spl deg/C and 1554.9/spl deg/C, respectively) have been used as thin metallic films for the SAW IDTs fabricated. Zirconium (Zr) was originally used as an adhesion layer on the fabricated SAW transducers to avoid migration into the Pt or Pd metallic films. The piezoelectric LGS crystal, used as the substrate upon which the SAW devices were fabricated, does not exhibit any phase transition up to its melting point at 1470/spl deg/C. A radio frequency (RF) test and characterization system capable of withstanding 1000/spl deg/C has been designed and constructed. The LGS SAW devices with Pt and Pd electrodes and the test system have been exposed to temperatures in the range of 250/spl deg/C to 750/spl deg/C over periods of up to 6 weeks, with the Saw devices showing a reduced degradation better than 7 dB in the magnitude of transmission coefficient, |S/sub 21/|, with respect to room temperature. These results qualify the Pt and Pd LGS SAW IDTs fabricated for the above listed modern applications in harsh environments.
Keywords :
gallium compounds; interdigital transducers; lanthanum compounds; melting point; metallic thin films; palladium; piezoelectric materials; piezoelectric thin films; platinum; surface acoustic wave transducers; 1000 degC; 1470 degC; 1554.9 degC; 1769 degC; 250 to 750 degC; 293 to 298 K; 6 week; Al thin film IDT; La/sub 3/Ga/sub 5/SiO/sub 14/; Pd-La/sub 3/Ga/sub 5/SiO/sub 14/; Pt-La/sub 3/Ga/sub 5/SiO/sub 14/; SAW devices; Zr; adhesion layer; aerospace combustion engines; aluminum thin film interdigital transducer; automobile combustion engines; characterization system; communication systems; degradation; electro migration; electrodes; frequency-control elements; gas sensors; gas wells; high-power duplexers; langasite piezoelectric substrates; melting point; metallic films; oil wells; palladium high-temperature transducers; phase transition; piezoelectric LGS crystal; platinum high-temperature transducers; pressure sensors; radio frequency (RF) test; signal-processing filters; stress migration; surface acoustic wave devices; temperature sensors; transmission coefficient; Palladium; Piezoelectric films; Piezoelectric transducers; Platinum; Radio frequency; Substrates; Surface acoustic wave devices; Surface acoustic waves; Temperature sensors; Zirconium;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2005.1428035