Natural Biopolymer-Based Biocompatible Conductors for Stretchable Bioelectronics

生物电子学 生物相容性材料 生物高聚物 纳米技术 生物相容性 材料科学 导电体 化学 导电聚合物 生物传感器 聚合物 工程类 生物医学工程 复合材料 冶金
作者
Chunya Wang,Tomoyuki Yokota,Takao Someya
出处
期刊:Chemical Reviews [American Chemical Society]
卷期号:121 (4): 2109-2146 被引量:188
标识
DOI:10.1021/acs.chemrev.0c00897
摘要

Biocompatible conductors are important components for soft and stretchable bioelectronics for digital healthcare, which have attracted extensive research efforts. Natural biopolymers, compared to other polymers, possess unique features that make them promising building blocks for biocompatible conductors, such as good biocompatibility/biodegradability, natural abundance, sustainability, and capability, can be processed into various functional formats with tunable material properties under benign conditions. In this comprehensive review, we focus on the recent advances in biocompatible conductors based on natural biopolymers for stretchable bioelectronics. We first give a brief introduction of conductive components and natural polymers and summarize the recent development of biocompatible conductors based on representative natural biopolymers including protein (silk), polypeptide (gelatin), and polysaccharide (alginate). The design and fabrication strategies for biocompatible conductors based on these representative biopolymers are outlined, after the chemical structure and properties of such biopolymers are presented. Then we discuss the electronic component–biopolymer interface and bioelectronic–biological tissue (skin and internal tissues) interface, highlight various fabrication techniques of biocompatible conductors for soft bioelectronics, and introduce representative examples of utilizing natural biopolymer-based biocompatible conductors for on-skin bioelectronics, textile-based wearable electronics, and implantable bioelectronics for digital healthcare. Finally, we present concluding remarks on challenges and prospects for designing natural biopolymers for soft biocompatible conductors and bioelectronics.
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