Chuanjie LiuZhihong LiuBing Lu
Self-healing hydrogels hold promise for smart sensors in bioengineering and intelligent systems, yet balancing self-healing ability with mechanical strength remains challenging. In this study, a self-healing hydrogel exhibiting superior stretchability was developed by embedding a combination of hydrogen bonding and dynamic metal coordination interactions, introduced by modified fenugreek galactomannan, ferric ions, and lignin silver nanoparticles, into a covalent polyacrylic acid (PAA) matrix. Synergistic covalent and multiple non-covalent interactions enabled the hydrogel with high self-healing ability and enhanced mechanical property. In particular, due to the introduction of multiple energy dissipation mechanisms, particularly migrative dynamic metal coordination interactions, the hydrogel exhibited ultra-high stretchability of up to 2000%. Furthermore, with the incorporation of lignin silver nanoparticles and ferric ions, the hydrogel demonstrated excellent strain sensitivity (gauge factor ≈ 3.94), with stable and repeatable resistance signals. Assembled into a flexible strain sensor, it effectively detected subtle human motions and organ vibrations, and even replaced conductive rubber in gaming controllers for real-time inputs. This study provides a versatile strategy for designing multifunctional hydrogels for advanced sensing applications.
Shuya YinGehong SuJiajun ChenXiaoyan PengTao Zhou
Junmin ChenXiubin XuMingzhu LiuYunlong LiDanfeng YuLu YuMeiting XiongIan WymanXuefeng XuXu WuXuefeng XuXu Wu
Tuba BaskanDeniz Ceylan TuncaboyluOǧuz Okay
Guangyang JiangMingrui ChenWenyang ShengChangchun LiXi XuYongqiang TianXinxing Zhang