AI Article Synopsis

  • - Shear mode solidly mounted resonators (SMRs) are created using inclined c-axis ZnO grown on a specially treated rough aluminum (Al) electrode, where the roughness is controlled by adjusting the substrate temperature during the deposition process.
  • - The best results are achieved at a substrate temperature of 100°C, producing inclined ZnO microcrystals with an effective angle of about 25°, while the devices exhibit high quality factors (Q) up to 180 and electromechanical coupling factors around 3.4%.
  • - The sensors show significant mass sensitivity (4.9 kHz·cm/ng) and can effectively function as viscosity sensors and biosensors, successfully measuring the frequency shifts in water-ethanol

Article Abstract

Shear mode solidly mounted resonators (SMRs) are fabricated using an inclined c-axis ZnO grown on a rough Al electrode. The roughness of the Al surface is controlled by changing the substrate temperature during the deposition process to promote the growth of inclined ZnO microcrystals. The optimum substrate temperature to obtain homogeneously inclined c-axis grains in ZnO films is achieved by depositing Al at 100 °C with a surface roughness ~9.2 nm, which caused an inclination angle of ~25° of the ZnO c-axis with respect to the surface normal. Shear mode devices with quality-factors at resonance, Q and effective electromechanical coupling factors, [Formula: see text], as high as 180 and 3.4% are respectively measured. Mass sensitivities, S of (4.9 ± 0.1) kHz · cm/ng and temperature coefficient of frequency (TCF) of ~-67 ppm/K are obtained using this shear mode. The performance of the devices as viscosity sensors and biosensors is demonstrated by determining the frequency shifts of water-ethanol mixtures and detection of Rabbit immunoglobin G (IgG) whole molecule (H&L) respectively.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5431054PMC
http://dx.doi.org/10.1038/s41598-017-01545-2DOI Listing

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