Citric acid-based degradable polyester elastomers coated with silver nanowires for sustainable soft sensors

Soft science Pub Date : 2022-01-01 DOI:10.20517/ss.2022.14
Zhao Wang, H. Zhou, Bohui Zheng, Yang Gao, Hongli Zhang, Xilang Jin, Gai Zhang, Aijie Ma
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Abstract

Although soft electronic materials are of significant importance for flexible electronic devices, most of them are derived from commercial polymer elastomers, such as polydimethylsiloxane, polyurethane and Ecoflex. In this work, citric acid-based degradable polyester elastomers are prepared by a melt polycondensation process, utilizing citric acid, 1,8-octanediol and poly(ethylene glycol) (PEG) as monomers. Furthermore, poly(1,8-octanediol citrate acid) (POC)-PEG/silver nanowire (AgNW) conductive polyester elastomers (CPEs) are prepared by introducing a AgNW layer on the surface of the POC-PEG films. Scanning electron microscopy images reveal that the thickness of the AgNW layer is on the scale of several micrometers and the AgNWs form a continuous conductive network. Upon mechanical stimuli, POC-PEG exhibits recoverable deformation and induces variation in the AgNW conductive network, resulting in a conversion of strain to detectable resistance. When tensile strain is applied, the POC-PEG/AgNW CPEs achieve a gauge factor of 231.6, a response range of 0%-50%, a low response time of 35 ms and high stability. Moreover, the POC-10PEG/AgNW CPE also responds to bending deformation with a gauge factor of 3667.5, a response range of 0%-8.4%, a low response time of 62 ms and high stability. On the basis of strain sensitivity, wireless sensors are further assembled by integrating the POC-PEG/AgNW CPEs into a Bluetooth signal transmission system. Various human motions and physiological activities are successfully monitored using the wireless sensors. The results demonstrate that degradable citric acid-based polyester elastomers/AgNW CPEs are promising materials for next-generation sustainable and flexible electronic devices.
柠檬酸基可降解聚酯弹性体包覆银纳米线,用于可持续软传感器
虽然软电子材料对柔性电子器件非常重要,但它们大多来自商业聚合物弹性体,如聚二甲基硅氧烷、聚氨酯和Ecoflex。本研究以柠檬酸、1,8-辛二醇和聚乙二醇为单体,采用熔融缩聚法制备了柠檬酸基可降解聚酯弹性体。此外,通过在POC-PEG薄膜表面引入AgNW层,制备了聚(1,8-辛二醇柠檬酸)-PEG/银纳米线(AgNW)导电聚酯弹性体(cpe)。扫描电镜图像显示,纳米氧化石墨烯层厚度在几微米量级,形成了连续的导电网络。在机械刺激下,POC-PEG表现出可恢复的变形,并诱导AgNW导电网络的变化,导致应变转化为可检测的电阻。当施加拉伸应变时,POC-PEG/AgNW cpe的测量系数为231.6,响应范围为0%-50%,响应时间低至35 ms,稳定性高。此外,POC-10PEG/AgNW CPE对弯曲变形的响应系数为3667.5,响应范围为0% ~ 8.4%,响应时间低至62 ms,稳定性高。在应变灵敏度的基础上,将POC-PEG/AgNW cpe集成到蓝牙信号传输系统中,进一步组装无线传感器。利用无线传感器可以成功地监测人体的各种运动和生理活动。结果表明,可降解的柠檬酸基聚酯弹性体/AgNW cpe是下一代可持续和柔性电子器件的有前途的材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
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