材料科学
自愈水凝胶
纳米技术
生物医学工程
钛酸钡
脚手架
生物物理学
复合材料
陶瓷
医学
生物
高分子化学
作者
Fan Wang,Xiaoyu Han,Zeyu Han,Juan Wang,Zhengwei Cai,Gang Chen,Dingqun Bai,Wenguo Cui
标识
DOI:10.1002/adma.202413156
摘要
High transductive loss at tissue injury sites impedes repair. The high dissipation characteristics in the electromechanical conversion of piezoelectric biomaterials pose a challenge. Therefore, supramolecular engineering and microfluidic technology is utilized to introduce slide-ring polyrotaxane and conductive polypyrrole to construct stress-electric coupling hydrogel microspheres. The molecular slippage mechanism of slide-ring structure stores and releases mechanical energy, reducing mechanical loss, the piezoelectric barium titanate enables stress-electricity conversion, and conjugated π-electron movement in conductive network improves the internal electron transfer efficiency of microspheres, thereby reducing the loss in stress-electricity conversion for the first time. Compared to traditional piezoelectric hydrogel microspheres, the stress-electric coupling efficiency of low-dissipation microspheres increased by 2.3 times, and the energy dissipation decreased to 43%. At cellular level, electrical signals generated by the microspheres triggered Ca
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