Ma Hude, Hou Jingdan, Xiao Xiao, Wan Rongtai, Ge Gang, Zheng Wenqian, Chen Chen, Cao Jie, Wang Jinye, Liu Chang, Zhao Qi, Zhang Zhilin, Jiang Peng, Chen Shuai, Xiong Wenhui, Xu Jingkun, Lu Baoyang
Jiangxi Key Lab of Flexible Electronics, Flexible Electronics Innovation Institute, Jiangxi Science & Technology Normal University, Nanchang 330013, Jiangxi, China; School of Pharmacy, Jiangxi Science & Technology Normal University, Nanchang 330013, Jiangxi, China.
Department of Electrical and Computer Engineering, National University of Singapore, Singapore 117583, Singapore.
J Colloid Interface Sci. 2024 Jan 15;654(Pt A):639-648. doi: 10.1016/j.jcis.2023.09.190. Epub 2023 Oct 11.
Electrical bioadhesive interfaces (EBIs) are standing out in various applications, including medical diagnostics, prosthetic devices, rehabilitation, and human-machine interactions. Nonetheless, crafting a reliable and advanced EBI with comprehensive properties spanning electrochemical, electrical, mechanical, and self-healing capabilities remains a formidable challenge. Herein, we develop a self-healing EBI by thoughtfully integrating conducting polymer nanofibers and a typical bioadhesive within a robust hydrogel matrix. The accomplished EBI demonstrates extraordinary adhesion (lap shear strength of 197 kPa), exceptional electrical conductivity (2.18 S m), and outstanding self-healing performance. Taking advantage of these attributes, we integrated the EBI into flexible skin electrodes for surface electromyography (sEMG) signal recording from forearm muscles. The engineered skin electrodes exhibit robust adhesion to the skin even when sweating, rapid self-healing from damage, and seamless real-time signal recording with a higher signal-to-noise ratio (39 dB). Our EBI, along with its skin electrodes, offers a promising platform for tissue-device integration, health monitoring, and an array of bioelectronic applications.
电生物粘附界面(EBIs)在包括医学诊断、假肢装置、康复以及人机交互等各种应用中脱颖而出。尽管如此,制造一种具有电化学、电学、机械和自愈能力等综合性能的可靠且先进的EBI仍然是一项艰巨的挑战。在此,我们通过在坚固的水凝胶基质中精心整合导电聚合物纳米纤维和一种典型的生物粘合剂,开发出一种自愈型EBI。制成的EBI表现出非凡的粘附力(搭接剪切强度为197 kPa)、出色的导电性(2.18 S/m)和卓越的自愈性能。利用这些特性,我们将EBI集成到柔性皮肤电极中,用于记录前臂肌肉的表面肌电图(sEMG)信号。经过设计的皮肤电极即使在出汗时也能与皮肤保持牢固粘附,能从损伤中快速自愈,并且能够以更高的信噪比(39 dB)进行无缝实时信号记录。我们的EBI及其皮肤电极,为组织 - 设备整合、健康监测以及一系列生物电子应用提供了一个有前景的平台。