School of Electrical and Electronic Engineering, Yonsei University, Seoul, 03722, Republic of Korea.
LYNK Solutec inc., Seoul, 03722, Republic of Korea.
Adv Sci (Weinh). 2023 Apr;10(12):e2207237. doi: 10.1002/advs.202207237. Epub 2023 Feb 17.
Developing bioelectronics that retains their long-term functionalities in the human body during daily activities is a current critical issue. To accomplish this, robust tissue adaptability and biointerfacing of bioelectronics should be achieved. Hydrogels have emerged as promising materials for bioelectronics that can softly adapt to and interface with tissues. However, hydrogels lack toughness, requisite electrical properties, and fabrication methodologies. Additionally, the water-swellable property of hydrogels weakens their mechanical properties. In this work, an intrinsically nonswellable multifunctional hydrogel exhibiting tissue-like moduli ranging from 10 to 100 kPa, toughness (400-873 J m ), stretchability (≈1000% strain), and rapid self-healing ability (within 5 min), is developed. The incorporation of carboxyl- and hydroxyl-functionalized carbon nanotubes (fCNTs) ensures high conductivity of the hydrogel (≈40 S m ), which can be maintained and recovered even after stretching or rupture. After a simple chemical modification, the hydrogel shows tissue-adhesive properties (≈50 kPa) against the target tissues. Moreover, the hydrogel can be 3D printed with a high resolution (≈100 µm) through heat treatment owing to its shear-thinning capacity, endowing it with fabrication versatility. The hydrogel is successfully applied to underwater electromyography (EMG) detection and ex vivo bladder expansion monitoring, demonstrating its potential for practical bioelectronics.
在日常活动中,开发能够在人体中长期保持其功能的生物电子学是当前的一个关键问题。为了实现这一目标,生物电子学应该具有强大的组织适应性和生物界面兼容性。水凝胶作为生物电子学的一种有前途的材料已经出现,它可以柔软地适应和与组织相互作用。然而,水凝胶缺乏韧性、必要的电性能和制造方法。此外,水凝胶的溶胀性质会削弱其机械性能。在这项工作中,开发了一种具有内在不可溶胀性的多功能水凝胶,其具有类似于组织的模量(10-100kPa)、韧性(400-873J m)、拉伸性(≈1000%应变)和快速自修复能力(在 5 分钟内)。羧基和羟基官能化碳纳米管(fCNTs)的掺入确保了水凝胶的高导电性(≈40S m),即使在拉伸或破裂后,这种导电性也可以保持和恢复。经过简单的化学修饰,水凝胶表现出对目标组织的组织粘附性能(≈50kPa)。此外,由于其剪切稀化能力,水凝胶可以通过热处理进行 3D 打印,具有很高的分辨率(≈100µm),赋予其制造多功能性。该水凝胶成功应用于水下肌电图(EMG)检测和离体膀胱膨胀监测,展示了其在实际生物电子学中的应用潜力。