聚偏氟乙烯
钛酸钡
锌
材料科学
嫁接
能量收集
氟化物
化学工程
复合材料
化学
能量(信号处理)
无机化学
陶瓷
冶金
聚合物
工程类
统计
数学
作者
Jiajun Guo,Chun Zhang,Liguo Li,Min Nie,Qi Wang
标识
DOI:10.1021/acs.iecr.2c01835
摘要
Energy scavenging from irregular human motion and the value-added application for a broad range of pressure sensing are gaining attention in wearable electronics and artificial intelligent systems. Here, we designed a bionic interlocking-structured polyvinylidene fluoride/zinc oxide-grafting barium titanate (PVDF/ZnO- g -BT) piezoelectric nanogenerator (PENG) for energy harvesting from human motion and tire pressure monitoring. First, a two-step hydrothermal method was utilized to align uniformly distributed ZnO nanowires onto the BT surface, forming bionic “sea-urchin” (SU) structured ZnO- g -BT. The ZnO nanowires that aligned on the surface can collaborate to facilitate the deformation of BT and endow the molded PVDF/ZnO- g -BT composites with some figures of merit, such as a fast piezoelectric response of ∼61 ms, superior sensing sensitivity of ∼130 mv/kPa, and excellent stability. Taking advantage of these, the potential application was explored by mechanical energy harvesting from irregular human motion and tire pressure sensing. The excellent electric performance enabled in-time feedback of various useful signals, directing for human motion and tire pressure monitoring. Due to the universal applicability of polydopamine (PDA) coating on any irregular-shaped matrix and easy fabrication of following hydrothermal growing of ZnO nanowires onto the PDA surface, this micro/nano-structure design method can be extended easily to any other organic or inorganic matrix for advanced applications. Undoubtedly, this work provides a simple structure design perspective toward multifunctional wearable electronics and opens a new avenue for piezoelectric sensing.
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