材料科学
压电
生物相容性
生物相容性材料
壳聚糖
灵活性(工程)
可穿戴计算机
纳米技术
制作
生物材料
薄膜
传感器
生物医学工程
复合材料
计算机科学
嵌入式系统
工程类
电气工程
化学工程
统计
病理
医学
冶金
替代医学
数学
作者
Gaia de Marzo,Vincenzo Mastronardi,Luciana Algieri,Federica Vergari,Filippo Pisano,Luca Fachechi,Sergio Marras,Lara Natta,Barbara Spagnolo,Virgilio Brunetti,Francesco Rizzi,Ferruccio Pisanello,Massimo De Vittorio
标识
DOI:10.1002/aelm.202200069
摘要
Abstract The necessity to continuously and seamlessly monitor human health is calling for compliant, comfortable, and safe wearables. The employment of piezoelectric biopolymers in form of thin film perfectly matches with these needs due to their inherent flexibility, sensitivity, and biocompatibility. Among them, chitosan is a low cost, highly sustainable, and biocompatible material with a great potential for applications in compliant wearables. However, chitosan and biopolymers in general show relatively low piezoelectric coefficients and processing difficulties. Here, it is shown a facile approach to increase more than twice the piezoelectric coefficient of thin chitosan film and to process this promising biomaterial for the fabrication of the first set of thin chitosan film‐based ultrasound transducers. This work leverages the exploitation of environmental‐friendly biopolymers in the development of compliant wearable transducers and thus represents a step forward in the development of completely biodegradable, transparent, thin, and flexible piezoelectric macro‐ and microtransducers.
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