Bradley Lee W, Yaras Yusuf S, Karahasanoglu Batin, Atasoy Begum, Levent Degertekin F
George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA 30318 USA.
IEEE Sens J. 2023 Apr 1;23(7):6672-6679. doi: 10.1109/jsen.2023.3251030. Epub 2023 Mar 6.
Low-temperature, flexible, 0-3 composite piezoelectric materials can decrease the size, cost, and complexity of high-frequency acoustic devices on temperature sensitive substrates such as those in catheter based ultrasonic devices and acoustooptic sensors. In this paper, the application of low-temperature 0-3 connected composite thick films in flexible, non-planar, high frequency ultrasonic devices is reported. A flexible high-frequency ultrasound transducer and an acousto-optic radio-frequency (RF) field sensor are demonstrated utilizing PZT-based composite thick films. Flexible composite films have been fabricated with thicknesses between 20-100μm utilizing screen-printing, stencil-printing, and dip-coating techniques. Composite films' piezoelectric d coefficient is measured, with results between 35-43 pC/N. Ultrasonic transducers utilizing these films demonstrate broadband acoustic response. A composite transducer is fabricated on flexible polyimide and wrapped around a 3mm catheter. Pulse-echo experiments demonstrate viability of these films as both as an actuator and a sensor in flexible devices. The composite material is further dip-coated onto an optical fiber Bragg grating to form a flexible acousto-optic RF field sensor. The sensor demonstrates RF field sensing in the 20-130 MHz range. The results from these experiments indicate significant potential for future flexible, high frequency ultrasonic devices utilizing low temperature 0-3 composite piezoelectric materials on temperature sensitive substrates.
低温、柔性的0-3复合压电材料可以减小基于温度敏感衬底的高频声学器件的尺寸、成本和复杂性,这些衬底用于诸如基于导管的超声设备和声光传感器等设备中。本文报道了低温0-3连通复合厚膜在柔性、非平面高频超声设备中的应用。利用基于PZT的复合厚膜展示了一种柔性高频超声换能器和声光射频(RF)场传感器。利用丝网印刷、模板印刷和浸涂技术制备了厚度在20-100μm之间的柔性复合膜。测量了复合膜的压电d系数,结果在35-43 pC/N之间。利用这些薄膜的超声换能器展示了宽带声学响应。在柔性聚酰亚胺上制备了一个复合换能器,并将其缠绕在一根3mm的导管上。脉冲回波实验证明了这些薄膜在柔性设备中作为致动器和传感器的可行性。将复合材料进一步浸涂到光纤布拉格光栅上,形成一个柔性声光RF场传感器。该传感器展示了在20-130 MHz范围内的RF场传感能力。这些实验结果表明,未来在温度敏感衬底上利用低温0-3复合压电材料制造柔性高频超声设备具有巨大潜力。