Lei Qiang, Gao Yang, Zhao Junwu, et al. Structure design of aluminium nitride double-ended tuning fork resonators[J]. High Power Laser and Particle Beams, 2017, 29: 104101. doi: 10.11884/HPLPB201729.170113
Citation:
Lei Qiang, Gao Yang, Zhao Junwu, et al. Structure design of aluminium nitride double-ended tuning fork resonators[J]. High Power Laser and Particle Beams, 2017, 29: 104101. doi: 10.11884/HPLPB201729.170113
Lei Qiang, Gao Yang, Zhao Junwu, et al. Structure design of aluminium nitride double-ended tuning fork resonators[J]. High Power Laser and Particle Beams, 2017, 29: 104101. doi: 10.11884/HPLPB201729.170113
Citation:
Lei Qiang, Gao Yang, Zhao Junwu, et al. Structure design of aluminium nitride double-ended tuning fork resonators[J]. High Power Laser and Particle Beams, 2017, 29: 104101. doi: 10.11884/HPLPB201729.170113
The resonant sensors based on aluminum nitride double-ended tuning fork (AlN DETF) have the characteristics of small size, good stability and reliability, and fast response. In order to improve the sensitivity and resolution, it is necessary to analyze the influence of the structure parameters of vibrating beam on the sensitivity and signal power of AlN resonator. The multi-physics model of AlN DETF resonator was established to verify effect of single parameter on the sensitivity by pre-stressed eigenfrequency analysis. The relationships between signal power and length, width of vibrating beam were obtained by post-processing data of simulation results when the thickness remained constant. The results show that relative sensitivity and signal power are growing in opposite directions with the width or the length of the beam. Therefore, there is a design tradeoff between signal power and relative sensitivity of AlN resonator according to process and structure strength. The optimized AlN DETF resonator was simulated, and its sensitivity, signal power and Q value are 56 Hz/N, 6.810-4 nW and 958, respectively.