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Characterization of the surface acoustic wave devices based on ZnO/nanocrystalline diamond structures
Journal article   Peer reviewed

Characterization of the surface acoustic wave devices based on ZnO/nanocrystalline diamond structures

Hua-Feng Pang, Luis Garcia-Gancedo, Yong Qing Fu, Samuele Porro, Yan-Wei Gu, J. K. Luo, Xiao-Tao Zu, Frank Placido, John I. B. Wilson, Andrew J. Flewitt, …
Physica status solidi. A, Applications and materials science, Vol.210(8), pp.1575-1583
01/08/2013

Abstract

Materials Science Materials Science, Multidisciplinary Physical Sciences Physics Physics, Applied Physics, Condensed Matter Science & Technology Technology
Nanocrystalline ZnO films with strong (0002) texture and fine grains were deposited onto ultra-nanocrystalline diamond (UNCD) layers on silicon using high target utilization sputtering technology. The unique characteristic of this sputtering technique allows room temperature growth of smooth ZnO films with a low roughness and low stress at high growth rates. Surface acoustic wave (SAW) devices were fabricated on ZnO/UNCD structure and exhibited good transmission signals with a low insertion loss and a strong side-lobe suppression for the Rayleigh mode SAW. Based on the optimization of the layered structure of the SAW device, a good performance with a coupling coefficient of 5.2% has been realized, promising for improving the microfluidic efficiency in droplet transportation comparing with that of the ZnO/Si SAW device. An optimized temperature coefficient of frequency of -23.4ppm degrees C-1 was obtained for the SAW devices with the 2.72 mu m-thick ZnO and 1.1 mu m-thick UNCD film. Significant thermal effect due to the acoustic heating has been redcued which is related to the temperature stability of the ZnO/UNCD SAW device.

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