材料科学
压电
可穿戴计算机
可穿戴技术
微电子机械系统
灵敏度(控制系统)
能量收集
纳米技术
计算机科学
生物医学工程
压力传感器
多孔性
呼吸
电场
微执行器
光电子学
声学
领域(数学)
软机器人
人工神经网络
结构健康监测
压电传感器
卷积神经网络
薄膜
智能材料
表征(材料科学)
载流子
作者
Xiaolong Wu,Xinwen Zhou,Zhicheng Li,Hongzhen Xie,Yunwei Li,Jinjun Liu,Aziguli Haibibu,Yinghong Chen,Zhongbin Pan
标识
DOI:10.1002/adfm.202522897
摘要
ABSTRACT The precise detection of low‐amplitude and spatially variant biomechanical signals continues to present a substantial technological challenge. Ferroelectrets, with their exceptional piezoelectric coefficients and dynamic response characteristics, represent a compelling alternative for developing high‐sensitivity pressure sensors and deformable energy harvesting systems. Herein, we present a highly sensitive poly(vinylidene fluoride) (PVDF) ferroelectret film featuring a cross‐scale pore structure fabricated using organic dimethylhexanediol (DMHD) crystals as sacrificial templates, sandwiched between two PVDF layers, thus forming a piezoelectric‐ferroelectret‐ piezoelectric (PFP) three‐layer thin film. The engineered porous architecture enables the substantial net charge storage and creates an oriented space charge network, where subtle mechanical loading (<1 N) induces pronounced charge displacements that generate strong local electric field variations. As a result, the optimized PEP devices exhibit a superior piezoelectric coefficient of 650 pC·N −1 , and high sensitivity of 595.85 mV·kPa −1 . As a proof‐of‐concept, the PFP device is seamlessly integrated into a facial mask, facilitating accurate recognition of respiratory behaviors. With the assistance of both a Convolutional Neural Network (CNN) and a Bidirectional Long Short‐Term Memory network (BiLSTM), a PEP‐based smart mask can recognize respiratory tracts and multiple breathing patterns with a classification accuracy of up to 100%. This study pioneers a high‐efficacy respiratory monitoring device via ferroelectret ultra‐sensitivity, showing transformative prospects for clinical diagnostics and daily healthcare implementation.
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