Title :
Low propagation loss in a one-port SAW resonator fabricated on single-crystal diamond for super-high-frequency applications
Author :
Fujii, Shohei ; Odawara, T. ; Yamada, Hiroyoshi ; Omori, Tatsuya ; Hashimoto, Koji ; Torii, Hideyuki ; Umezawa, Hitoshi ; Shikata, Shin-Ichi
Author_Institution :
Chiba Univ., Chiba, Japan
Abstract :
Diamond has the highest known SAW phase velocity, sufficient for applications in the gigahertz range. However, although numerous studies have demonstrated SAW devices on polycrystalline diamond thin films, all have had much larger propagation loss than single-crystal materials such as LiNbO3. Hence, in this study, we fabricated and characterized one-port SAW resonators on single-crystal diamond substrates synthesized using a high-pressure and high-temperature method to identify and minimize sources of propagation loss. A series of one-port resonators were fabricated with the interdigital transducer/ AlN/diamond structure and their characteristics were measured. The device with the best performance exhibited a resonance frequency f of 5.3 GHz, and the equivalent circuit model gave a quality factor Q of 5509. Thus, a large fQ product of approximately 2.9 × 1013 was obtained, and the propagation loss was found to be only 0.006 dB/wavelength. These excellent properties are attributed mainly to the reduction of scattering loss in a substrate using a single-crystal diamond, which originated from the grain boundary of diamond and the surface roughness of the AlN thin film and the diamond substrate. These results show that single-crystal diamond SAW resonators have great potential for use in low-noise super-high-frequency oscillators.
Keywords :
Q-factor; aluminium compounds; diamond; equivalent circuits; oscillators; surface acoustic wave resonators; surface roughness; thin films; AlN; SAW phase velocity; diamond structure; equivalent circuit model; frequency 5.3 GHz; interdigital transducer; low-noise super-high-frequency oscillator; one-port SAW resonator; one-port resonator; polycrystalline diamond thin film; propagation loss; quality factor; scattering loss reduction; single-crystal diamond SAW resonator; single-crystal diamond substrate; super-high-frequency application; surface roughness;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2013.2656