IEEE Trans Ultrason Ferroelectr Freq Control. 2018 Mar;65(3):457-464. doi: 10.1109/TUFFC.2017.2784810.
Piezoelectric materials are vital in determining ultrasonic transducer and imaging performance as they offer the function for conversion between mechanical and electrical energy. Ultrasonic transducers with high-frequency operation suffer from performance degradation and fabrication difficulty of the demanded piezoelectric materials. Hence, we propose 1-D polymeric piezoelectric nanostructure with controlled nanoscale features to overcome the technical limitations of high-frequency ultrasonic transducers. For the first time, we demonstrate the integration of a well-aligned piezoelectric nanotube array to produce a high-frequency ultrasonic transducer with outstanding performance. We find that nanoconfinement-induced polarization orientation and unique nanotube structure lead to significantly improved piezoelectric and ultrasonic transducing performance over the conventional piezoelectric thin film. A large bandwidth, 126% (-6 dB), is achieved at high center frequency, 108 MHz. Transmission sensitivity of nanotube array is found to be 46% higher than that of the monolithic thin film transducer attributed to the improved electromechanical coupling effectiveness and impedance match. We further demonstrate high-resolution scanning, ultrasonic imaging, and photoacoustic imaging using the obtained nanotube array transducers, which is valuable for biomedical imaging applications in the future.
压电材料在确定超声换能器和成像性能方面至关重要,因为它们提供了机械能和电能之间转换的功能。高频操作的超声换能器由于所需压电材料的性能退化和制造困难而受到影响。因此,我们提出了具有受控纳米级特征的一维聚合物压电纳米结构,以克服高频超声换能器的技术限制。我们首次展示了将排列良好的压电纳米管阵列集成到产生具有出色性能的高频超声换能器中。我们发现,纳米限域诱导的极化方向和独特的纳米管结构导致压电和超声转换性能显著优于传统的压电薄膜。在高中心频率 108 MHz 时,实现了大带宽 126%(-6 dB)。由于改进的机电耦合效率和阻抗匹配,发现纳米管阵列的传输灵敏度比整体薄膜换能器高 46%。我们进一步使用获得的纳米管阵列换能器进行高分辨率扫描、超声成像和光声成像,这对于未来的生物医学成像应用具有重要价值。