Kang Minkyong, Park Jae, Kim Soo A, Kim Tae Young, Kim Ju Yeon, Kim Dae Woo, Park Kijun, Seo Jungmok
Department of Electrical and Electronic Engineering, Yonsei University, Seoul, 03722, Republic of Korea.
Department of Chemical and Biomolecular Engineering, Yonsei University, Seoul, 03722, Republic of Korea.
Biosens Bioelectron. 2024 Jul 1;255:116257. doi: 10.1016/j.bios.2024.116257. Epub 2024 Mar 30.
Seamless integration and conformal contact of soft electronics with tissue surfaces have emerged as major challenges in realizing accurate monitoring of biological signals. However, the mechanical mismatch between the electronics and biological tissues impedes the conformal interfacing between them. Attempts have been made to utilize soft hydrogels as the bioelectronic materials to realize tissue-comfortable bioelectronics. However, hydrogels have several limitations in terms of their electrical and mechanical properties. In this study, we present the development of a 3D-printable modulus-tunable hydrogel with multiple functionalities. The hydrogel has a cross-linked double network, which greatly improves its mechanical properties. Functional fillers such as XLG or functionalized carbon nanotubes (fCNT) can be incorporated into the hydrogel to provide tunable mechanics (Young's modulus of 10-300 kPa) and electrical conductivity (electrical conductivity of ∼20 S/m). The developed hydrogel exhibits stretchability (∼1000% strain), self-healing ability (within 5 min), toughness (400-731 kJ/m) viscoelasticity, tissue conformability, and biocompatibility. Upon examining the rheological properties in the modulated region, hydrogels can be 3D printed to customize the shape and design of the bioelectronics. These hydrogels can be fabricated into ring-shaped strain sensors for wearable sensor applications.
软电子器件与组织表面的无缝集成和共形接触已成为实现生物信号精确监测的主要挑战。然而,电子器件与生物组织之间的机械不匹配阻碍了它们之间的共形界面。人们已尝试利用软水凝胶作为生物电子材料来实现对组织舒适的生物电子器件。然而,水凝胶在电学和力学性能方面存在若干局限性。在本研究中,我们展示了一种具有多种功能的可3D打印的模量可调水凝胶的研发。该水凝胶具有交联双网络,极大地改善了其力学性能。诸如XLG或功能化碳纳米管(fCNT)等功能填料可掺入水凝胶中,以提供可调的力学性能(杨氏模量为10 - 300 kPa)和电导率(电导率约为20 S/m)。所研发的水凝胶表现出拉伸性(应变约为1000%)、自愈能力(5分钟内)、韧性(400 - 731 kJ/m)、粘弹性、组织顺应性和生物相容性。在调制区域检查流变性能时,水凝胶可通过3D打印来定制生物电子器件的形状和设计。这些水凝胶可制成用于可穿戴传感器应用的环形应变传感器。