Chen Jian-Xun, Li Jia-Wun, Cheng Chih-Chia, Chiu Chih-Wei
Department of Materials Science and Engineering, National Taiwan University of Science and Technology, Taipei 10607, Taiwan.
Graduate Institute of Applied Science and Technology, National Taiwan University of Science and Technology, Taipei 10607, Taiwan.
ACS Omega. 2021 Dec 22;7(1):793-803. doi: 10.1021/acsomega.1c05451. eCollection 2022 Jan 11.
In this study, lead zirconate titanate (PZT) ceramic particles were added for further improvement. PZT belongs to the perovskite family and exhibits good piezoelectricity. Thus, it was added in this experiment to enhance the piezoelectric response of the poly(vinylidenefluoride--trifluoroethylene) (PVDF-TrFE) copolymer, which produced a voltage output of 1.958 V under a cyclic pressure of 290 N. In addition, to further disperse the PZT particles in the PVDF-TrFE matrix, tetradecylphosphonic acid (TDPA) was synthesized and employed to modify the PZT surface, after which the surface-modified PZT (m-PZT) particles were added to the PVDF-TrFE matrix. The TDPA on the PZT surface made it difficult for the particles to aggregate, allowing them to disperse in the polymer solution more stably. In this way, the PZT particles with piezoelectric responses could be uniformly dispersed in the PVDF-TrFE film, thereby further enhancing its overall piezoelectric response. The test results showed that upon the addition of 10 wt % m-PZT, the piezoelectric coefficient of m-PZT/PVDF-TrFE 10 wt % was 27 pC/N; and under a cyclic pressure of 290 N, the output voltage reached 3.426 V, which demonstrated a better piezoelectric response than the polymer film with the original PZT particles. Furthermore, the piezoelectric coefficient of m-PZT/PVDF-TrFE 10 wt % was 27.1 pC/N. This was exhibited by maintaining a piezoelectric coefficient of 26.8 pC/N after 2000 cycles. Overall, a flexible piezoelectric film with a high piezoelectric coefficient was prepared by following a simple fabrication process, which showed that this film possesses great commercial potential.
在本研究中,添加了锆钛酸铅(PZT)陶瓷颗粒以进一步改进。PZT属于钙钛矿家族,具有良好的压电性。因此,在本实验中添加它以增强聚(偏二氟乙烯-三氟乙烯)(PVDF-TrFE)共聚物的压电响应,该共聚物在290 N的循环压力下产生1.958 V的电压输出。此外,为了使PZT颗粒在PVDF-TrFE基体中进一步分散,合成了十四烷基膦酸(TDPA)并用于修饰PZT表面,然后将表面改性的PZT(m-PZT)颗粒添加到PVDF-TrFE基体中。PZT表面的TDPA使颗粒难以聚集,使其更稳定地分散在聚合物溶液中。通过这种方式,具有压电响应的PZT颗粒可以均匀地分散在PVDF-TrFE薄膜中,从而进一步增强其整体压电响应。测试结果表明,添加10 wt%的m-PZT后,m-PZT/PVDF-TrFE 10 wt%的压电系数为27 pC/N;在290 N的循环压力下,输出电压达到3.426 V,这表明其压电响应优于含有原始PZT颗粒的聚合物薄膜。此外,m-PZT/PVDF-TrFE 10 wt%的压电系数为27.1 pC/N。在2000次循环后保持26.8 pC/N的压电系数就证明了这一点。总体而言,通过简单的制造工艺制备了具有高压电系数的柔性压电薄膜,这表明该薄膜具有巨大的商业潜力。