材料科学
压电
极化
铁电性
复合数
压电系数
极化(电化学)
复合材料
纳米发生器
压电传感器
PMUT公司
光电子学
电介质
化学
物理化学
作者
Le Jing,Fu Lv,Jiamin Lin,Yongjun Wu,Zhaohui Ren,Qilong Zhang,Shurong Dong,Jikui Luo,Junhui Shi,Ruimin Chen,Zijian Hong,Yu Huang
标识
DOI:10.1021/acsami.3c15046
摘要
Piezoelectric poly(vinylidene fluoride) (PVDF) and its copolymers have been widely investigated for applications in wearable electric devices and sensing systems, owing to their intrinsic piezoelectricity and superior flexibility. However, their weak piezoelectricity poses major challenges for practical applications. To overcome these challenges, we propose a two-step synthesis approach to fabricate sandwich-structured piezoelectric films (BaTiO3@PDA/PVDF/BaTiO3@PDA) with significantly enhanced ferroelectric and piezoelectric properties. As compared to pristine PVDF films or conventional 0–3 composite films, a maximum polarization (Pmax) of 11.24 μC/cm2, a remanent polarization (Pr) of 5.83 μC/cm2, and an enhanced piezoelectric coefficient (d33 ∼ 14.6 pC/N) were achieved. Simulation and experimental results have demonstrated that the sandwich structure enhances the ability of composite films to withstand higher poling electric fields in comparison with 0–3 composites. The sandwich-structured piezoelectric films are further integrated into a wireless sensor system with a high force sensitivity of 288 mV/N, demonstrating great potential for movement monitoring applications. This facile approach shows great promise for the large-scale production of composite films with remarkable flexibility, ferroelectricity, and piezoelectricity for wearable sensing devices.
科研通智能强力驱动
Strongly Powered by AbleSci AI