材料科学
导电体
性能增强
纳米技术
自愈水凝胶
可穿戴计算机
可穿戴技术
钥匙(锁)
导电的
电极
光电子学
生物相容性材料
绩效改进
导电聚合物
生物医学工程
作者
Shuang Tian,Zehao Huang,Y Yang,Yuelu Li,Jiacheng Zhang,Chunxiao Lan,Lijie Huang,Chongxing Huang,Hui Zhao,Qingshan Duan
标识
DOI:10.1021/acsami.6c05349
摘要
Starch is the most abundant natural polymer and plays a crucial role in the development of hydrogel materials. Starch-based conductive hydrogels have been widely applied in wearable sensors owing to their excellent electrical conductivity and biocompatibility. This review summarizes the recent advances in starch-based conductive hydrogels for wearable sensor applications. It outlines the relationships between the fundamental structure of starch and the resulting material structures and properties and clarifies the preparation strategies for starch-based conductive hydrogels. Then, the conductive structures of hydrogels are classified into three main categories: ionic conduction, electronic conduction, and ion-electron synergistic conduction. Within these categories, several subtypes of conductive network architectures are discussed in detail, including single-network, semi-interpenetrating network, interpenetrating network, and multiple-network structures. The review also covers key performance enhancement strategies required for starch-based hydrogels used in wearable sensors, including antiswelling capability, mechanical performance, self-healing ability, adhesion, environmental responsiveness, biocompatibility, and environmental durability. Overall, the current challenges in this field are analyzed, and potential future research directions are proposed to advance the development of starch-based conductive hydrogels for wearable sensor applications.
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