Caliendo Cinzia
Istituto di Acustica e Sensori Corbino, IDASC-CNR, Via del Fosso del Cavaliere 100, 00133 Roma, Italy.
Sensors (Basel). 2015 Jan 23;15(2):2525-37. doi: 10.3390/s150202525.
The propagation of the fundamental symmetric Lamb mode S0 along wz-BN/AlN thin composite plates suitable for telecommunication and sensing applications is studied. The investigation of the acoustic field profile across the plate thickness revealed the presence of modes having longitudinal polarization, the Anisimkin Jr. plate modes (AMs), travelling at a phase velocity close to that of the wz-BN longitudinal bulk acoustic wave propagating in the same direction. The study of the S0 mode phase velocity and coupling coefficient (K2) dispersion curves, for different electrical boundary conditions, has shown that eight different coupling configurations are allowable that exhibit a K2 as high as about 4% and very high phase velocity (up to about 16,700 m/s). The effect of the thickness and material type of the metal floating electrode on the K2 dispersion curves has also been investigated, specifically addressing the design of an enhanced coupling device. The gravimetric sensitivity of the BN/AlN-based acoustic waveguides was then calculated for both the AMs and elliptically polarized S0 modes; the AM-based sensor velocity and attenuation shifts due to the viscosity of a surrounding liquid was theoretically predicted. The performed investigation suggests that wz-BN/AlN is a very promising substrate material suitable for developing GHz band devices with enhanced electroacoustic coupling efficiency and suitable for application in telecommunications and sensing fields.
研究了适用于电信和传感应用的基本对称兰姆模式S0在wz-BN/AlN复合薄板中的传播。对整个板厚的声场分布进行研究后发现,存在具有纵向极化的模式,即阿尼西姆金 Jr. 板模式(AMs),其相速度接近于沿相同方向传播的wz-BN纵向体声波的相速度。对于不同的电边界条件,对S0模式的相速度和耦合系数(K2)色散曲线的研究表明,存在八种不同的耦合配置,其K2高达约4%,且相速度非常高(高达约16700米/秒)。还研究了金属浮动电极的厚度和材料类型对K2色散曲线的影响,特别关注增强耦合装置的设计。然后计算了基于BN/AlN的声波导对AMs和椭圆极化S0模式的重量灵敏度;从理论上预测了基于AM的传感器由于周围液体的粘性而导致的速度和衰减变化。所进行的研究表明,wz-BN/AlN是一种非常有前途的衬底材料,适用于开发具有增强电声耦合效率的GHz频段器件,并适用于电信和传感领域的应用。