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用于生物力学传感的、由可拉伸抗菌水凝胶电极制成的摩擦纳米发电机。

Triboelectric Nanogenerator Made with Stretchable, Antibacterial Hydrogel Electrodes for Biomechanical Sensing.

作者信息

Song Yuxiang, Wu Hanjunyi, He Xiangtian, Fang Chunlei, Song Qian, Chen Minghao, Liu Zerui, Lu Yong, Yu Bingran, Liu Ting, Zhang Jicai, Xu Fu-Jian

机构信息

State Key Laboratory of Chemical Resource Engineering, Laboratory of Biomedical Materials and Key Lab of Biomedical Materials of Natural Macromolecules (Ministry of Education), Beijing University of Chemical Technology, Beijing 100029, China.

College of Mathematics and Physics, Beijing University of Chemical Technology, Beijing 100029, China.

出版信息

ACS Appl Mater Interfaces. 2024 Sep 25;16(38):50630-50639. doi: 10.1021/acsami.4c08410. Epub 2024 Sep 12.

Abstract

Triboelectric nanogenerators (TENGs) have attracted widespread attention as a promising candidate for energy harvesting due to their flexibility and high power density. To meet diverse application scenarios, a highly stretchable (349%), conductive (1.87 S m), and antibacterial electrode composed of carbon quantum dots/LiCl/agar-polyacrylamide (CQDs/LiCl/agar-PAAm) dual-network (DN) hydrogel is developed for wearable TENGs. Notably, the concentration of agar alters the pore spacing and pore size of the DN hydrogel, thereby impacting the network cross-linking density and the migration of conductive ions (Li and Cl). This variation further affects the mechanical strength and conductivity of the hydrogel electrode, thus modulating the mechanical stability and electrical output performance of the TENGs. With the optimal agar content, the tensile strength and conductivity of the hydrogel electrode increase by 211 and 719%, respectively. This enhancement ensures the stable output of TENGs during continuous operation (6000 cycles), with open-circuit voltage, short-circuit current, and transferred charge increasing by 200, 530, and 155%, respectively. Additionally, doping with CQDs enables the hydrogel electrode to effectively inhibit the Gram-negative bacterium . Finally, the TENGs are utilized as a self-power smart ring for efficient and concise information transmission via Morse code. Consequently, this study introduces a creative approach for designing and implementing multifunctional, flexible wearable devices.

摘要

摩擦纳米发电机(TENGs)因其灵活性和高功率密度,作为一种有前景的能量收集候选材料而受到广泛关注。为满足多样化的应用场景,一种由碳量子点/氯化锂/琼脂 - 聚丙烯酰胺(CQDs/LiCl/agar - PAAm)双网络(DN)水凝胶制成的高拉伸性(349%)、导电(1.87 S m)且抗菌的电极被开发用于可穿戴TENGs。值得注意的是,琼脂的浓度会改变DN水凝胶的孔间距和孔径,从而影响网络交联密度以及导电离子(Li和Cl)的迁移。这种变化进一步影响水凝胶电极的机械强度和导电性,进而调节TENGs的机械稳定性和电输出性能。在琼脂含量最佳时,水凝胶电极的拉伸强度和导电性分别提高了211%和719%。这种增强确保了TENGs在连续运行(6000次循环)期间的稳定输出,开路电压、短路电流和转移电荷分别增加了200%、530%和155%。此外,掺杂CQDs使水凝胶电极能够有效抑制革兰氏阴性菌。最后,TENGs被用作自供电智能戒指,通过莫尔斯电码进行高效简洁的信息传输。因此,本研究引入了一种设计和实现多功能、柔性可穿戴设备的创新方法。

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