Han Rui, Zheng Lang, Li Guangzhao, Chen Gang, Ma Sude, Cai Shuang, Li Yijun
School of Materials Science and Engineering, Xihua University, Chengdu, Sichuan 610039, China.
School of Optoelectronic Science and Engineering, University of Electronic Science and Technology of China, Chengdu, Sichuan 610054, China.
ACS Appl Mater Interfaces. 2021 Oct 6;13(39):46738-46748. doi: 10.1021/acsami.1c14007. Epub 2021 Sep 21.
Micropiezoelectric devices have become one of the most competitive candidates for use in self-powered flexible and portable electronic products because of their instant response and mechanic-electric conversion ability. However, achievement of high output performance of micropiezoelectric devices is still a significant and challenging task. In this study, a poly(vinylidene fluoride) (PVDF)/MXene piezoelectric microdevice was fabricated through a microinjection molding process. The synergistic effect of both an intense shear rate (>10 s) as well as numerous polar C-F functional groups in MXene flakes promoted the formation of β-form crystals of PVDF in which the crystallinity of β-form could reach as high as 59.9%. Moreover, the shear-induced shish-kebab crystal structure with a high orientation degree ( = ∼0.9) and the stacked MXene acted as the driving force for the dipoles to regularly arrange and produce a self-polarizing effect. Without further polarization, the fabricated piezoelectric microdevices exhibited an open-circuit voltage of 15.2 V and a short-circuit current of 497.3 nA, under optimal conditions (400 mm s and 1 wt % MXene). Impressively, such piezoelectric microdevices can be used for energy storage and for sensing body motion to monitor exercise, and this may have a positive impact on next-generation smart sports equipment.
由于其即时响应和机电转换能力,微压电设备已成为用于自供电柔性和便携式电子产品的最具竞争力的候选者之一。然而,实现微压电设备的高输出性能仍然是一项重大且具有挑战性的任务。在本研究中,通过微注塑成型工艺制备了聚偏二氟乙烯(PVDF)/MXene压电微器件。强烈剪切速率(>10 s)以及MXene薄片中大量极性C-F官能团的协同作用促进了PVDF的β晶型晶体的形成,其中β晶型的结晶度可高达59.9%。此外,具有高取向度(= ∼0.9)的剪切诱导串晶结构和堆叠的MXene作为偶极子规则排列并产生自极化效应的驱动力。在没有进一步极化的情况下,所制备的压电微器件在最佳条件(400 mm s和1 wt% MXene)下表现出15.2 V的开路电压和497.3 nA的短路电流。令人印象深刻的是,这种压电微器件可用于能量存储和感知身体运动以监测运动,这可能对下一代智能运动设备产生积极影响。