Title : 
2 GHz surface transverse wave oscillators, design, performance and limitations
         
        
            Author : 
Avramov, Ivan D. ; Aliev, Vladimir S. ; Denissenko, S. ; Kozlov, Anatoliy S.
         
        
            Author_Institution : 
Inst. of Solid State Phys., Sofia, Bulgaria
         
        
        
            fDate : 
31 May-2 Jun 1995
         
        
        
        
            Abstract : 
The current state-of-the-art for 2 GHz resonant devices and stable microwave oscillators using surface transverse waves (STW) is presented. Single mode low-Q resonators with an unmatched insertion loss of 4.85 dB, high-Q extended cavity resonators with an unloaded B of 3800 and an insertion loss of 10 dB, as well as 2-pole coupled resonator filters with a 3 dB bandwidth of 4 MHz and an insertion loss within 10 dB are described and characterized in detail. It is shown that the major loss mechanism in STW resonators, operating in the 2 GHz range, is the ohmic loss limiting the maximum achievable unloaded Q to about 75% of the material Q for SAW at this frequency. High-performance feedback oscillators are designed in a straight forward procedure using transistor and STW device S-parameters. Both stripline and lumped component designs provide elegant solutions to miniature 2 GHz oscillators with a temperature stability within 100 ppm over a (-20...+70) deg. C range and an output power in excess of +21 dBm
         
        
            Keywords : 
Q-factor; S-parameters; UHF filters; UHF oscillators; cavity resonators; circuit stability; feedback oscillators; losses; microwave oscillators; resonator filters; surface acoustic wave oscillators; surface acoustic wave resonator filters; surface acoustic wave resonators; -20 to 70 C; 10 dB; 2 GHz; 2-pole coupled resonator filters; 4.85 dB; S-parameters; STW resonators; UHF resonant devices; feedback oscillators; high-Q extended cavity resonators; insertion loss; loss mechanism; lumped component designs; ohmic loss; single mode low-Q resonators; stable microwave oscillators; stripline design; surface transverse wave oscillators; temperature stability; Bandwidth; Cavity resonators; Frequency; Insertion loss; Microwave devices; Microwave oscillators; Resonance; Resonator filters; Surface acoustic waves; Surface waves;
         
        
        
        
            Conference_Titel : 
Frequency Control Symposium, 1995. 49th., Proceedings of the 1995 IEEE International
         
        
            Conference_Location : 
San Francisco, CA
         
        
            Print_ISBN : 
0-7803-2500-1
         
        
        
            DOI : 
10.1109/FREQ.1995.483935