材料科学
生物电子学
纳米技术
自愈水凝胶
可穿戴计算机
超级电容器
可穿戴技术
摩擦电效应
仿生材料
聚合物
织物
生物传感器
仿生学
碳纳米管
离子键合
羧甲基纤维素
导电体
计算机科学
人工肌肉
材料选择
离子液体
智能材料
纳米发生器
超分子化学
电极
纳米机电系统
生物相容性
导电聚合物
纳米纤维素
表面改性
作者
Yajun Mi,Tong Wu,Yu Sun,Yifei Wang,Xia Cao,Ning Wang
摘要
ABSTRACT The development of multifunctional, sustainable material platforms that simultaneously deliver high performance, environmental adaptability, and integrated functionality remains a grand challenge in wearable electronics. Herein, we report a fully biomass‐enhanced conductive hydrogel engineered via a synergistic interplay between lignosulfonate (LS) and carboxymethyl cellulose (CMC) within a poly(AAm‐co‐DMC) network. This design leverages a hierarchical architecture of covalent cross‐linking and dynamic noncovalent interactions (electrostatic, hydrogen bonding, and π‐π stacking) to decouple the classic trade‐offs between mechanical robustness, functional versatility, and sustainability. The resultant material exhibits an exceptional combination of properties: remarkable mechanical robustness, rapid self‐healing, strong adhesion, and all‐weather operational stability enabled by an anti‐freezing ionic matrix. More importantly, this integrated functionality enables the hydrogel to serve as a unified, all‐in‐one platform capable of functioning as an ultra‐wide‐range strain sensor, a high‐fidelity electrode for electrophysiological monitoring, a high‐output triboelectric nanogenerator (TENG), and a stable supercapacitor (SC) electrolyte. Furthermore, an intelligent gesture recognition platform based on the collected electromyography signals, empowered by advanced machine learning algorithms, was developed to facilitate barrier‐free communication. This work establishes a sustainable design paradigm, demonstrating that the synergistic use of natural polymers can pave the way for next‐generation, energy‐autonomous wearable systems that are both high‐performing and environmentally benign.
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