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由β-乳球蛋白原纤维辅助的柔性聚乙烯醇多孔膜改进的可生物降解且可植入的摩擦纳米发电机

Biodegradable and Implantable Triboelectric Nanogenerator Improved by β-Lactoglobulin Fibrils-Assisted Flexible PVA Porous Film.

作者信息

Quan Yichang, Wang Engui, Ouyang Han, Xu Lingling, Jiang Lu, Teng Lijing, Li Jiaxuan, Luo Lin, Wu Xujie, Zeng Zhu, Li Zhou, Zheng Qiang

机构信息

Key Laboratory of Biology and Medical Engineering/Immune Cells and Antibody Engineering Research Center of Guizhou Province, School of Biology and Engineering, Guizhou Medical University, Guiyang, 550025, P. R. China.

Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, Beijing, 101400, P. R. China.

出版信息

Adv Sci (Weinh). 2024 Nov 11:e2409914. doi: 10.1002/advs.202409914.

Abstract

Triboelectric nanogenerators (TENGs) are highly promising as implantable, degradable energy sources and self-powered sensors. However, the degradable triboelectric materials are often limited in terms of contact electrification and mechanical properties. Here, a bio-macromolecule-assisted toughening strategy for PVA aerogel-based triboelectric materials is proposed. By introducing β-lactoglobulin fibrils (BF) into the PVA aerogel network, the material's mechanical properties while preserving its swelling resistance is significantly enhanced. Compared to pure PVA porous film, the BF-PVA porous film exhibits an eightfold increase in fracture strength (from 1.92 to 15.48 J) and a fourfold increase in flexibility (from 10.956 to 39.36 MPa). Additionally, the electrical output of BF-PVA in triboelectric performance tests increased nearly fivefold (from 45 to 203 V). Leveraging these enhanced properties, a biodegradable TENG (bi-TENG) for implantable muscle activity sensing is developed, achieving real-time monitoring of neuromuscular processes. This innovation holds significant potential for advancing implantable medical devices and promoting new applications in bio-integrated electronics.

摘要

摩擦纳米发电机(TENGs)作为可植入、可降解的能源和自供电传感器具有很大的前景。然而,可降解的摩擦电材料在接触起电和机械性能方面往往受到限制。在此,提出了一种用于基于PVA气凝胶的摩擦电材料的生物大分子辅助增韧策略。通过将β-乳球蛋白原纤维(BF)引入PVA气凝胶网络,材料在保持其抗膨胀性的同时,机械性能得到显著增强。与纯PVA多孔膜相比,BF-PVA多孔膜的断裂强度提高了八倍(从1.92提高到15.48 J),柔韧性提高了四倍(从10.956提高到39.36 MPa)。此外,BF-PVA在摩擦电性能测试中的电输出增加了近五倍(从45 V增加到203 V)。利用这些增强的性能,开发了一种用于植入式肌肉活动传感的可生物降解TENG(bi-TENG),实现了对神经肌肉过程的实时监测。这一创新对于推进可植入医疗设备和促进生物集成电子学中的新应用具有巨大潜力。

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