材料科学
生物电子学
生物相容性
自愈水凝胶
胶粘剂
导电体
纳米技术
组织工程
粘附
生物医学工程
复合材料
高分子化学
生物传感器
医学
图层(电子)
冶金
作者
Im Kyung Han,Kang‐Il Song,Sang‐Mun Jung,Yeonggwon Jo,Jaesub Kwon,Taehun Chung,Surim Yoo,Jinah Jang,Yong‐Tae Kim,Dong Soo Hwang,Youn Soo Kim
标识
DOI:10.1002/adma.202203431
摘要
As a new class of materials, implantable flexible electrical conductors have recently been developed and applied to bioelectronics. An ideal electrical conductor requires high conductivity, tissue-like mechanical properties, low toxicity, reliable adhesion to biological tissues, and the ability to maintain its shape in wet physiological environments. Despite significant advances, electrical conductors that satisfy all these requirements are insufficient. Herein, a facile method for manufacturing a new conductive hydrogels through the simultaneous exfoliation of graphite and polymerization of zwitterionic monomers triggered by microwave irradiation is introduced. The mechanical properties of the obtained conductive hydrogel are similar to those of living tissue, which is ideal as a bionic adhesive for minimizing contact damage due to mechanical mismatches between hard electronics and soft tissues. Furthermore, it exhibits excellent adhesion performance, electrical conductivity, non-swelling, and high conformability in water. Excellent biocompatibility of the hydrogel is confirmed through a cytotoxicity test using C2C12 cells, a biocompatibility test on rat tissues, and their histological analysis. The hydrogel is then implanted into the sciatic nerve of a rat and neuromodulation is demonstrated through low-current electrical stimulation. This hydrogel demonstrates a tissue-like extraneuronal electrode, which possesses high conformability to improve the tissue-electronics interfaces, promising next-generation bioelectronics applications.
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