生物电子学
自愈
自愈水凝胶
材料科学
胶粘剂
导电聚合物
纳米技术
组织工程
生物粘附
聚合物
自粘
导电体
生物医学工程
再生(生物学)
再生医学
生物相容性材料
生物相容性
伤口愈合
生物材料
药物输送
生物传感器
复合材料
高分子化学
图层(电子)
作者
Vineeta Panwar,Anand Babu,Anjana Sharma,Jijo Thomas,Vianni Chopra,Pinki Malik,Swati Rajput,Monika Mittal,Rajdeep Guha,Naibedya Chattopadhyay,Dipankar Mandal,Deepa Ghosh
摘要
Conductive hydrogels are attracting considerable interest in view of their potential in a wide range of applications that include healthcare and electronics. Such hydrogels are generally incorporated with conductive materials/polymers. Herein, we present a series of conductive hydrogels (Ch-CMC-PDA), prepared with no additional conductive material. The hydrogels were synthesized using a combination of chitosan, cellulose (CMC) and dopamine (DA). The conductivity (0.01-3.4 × 10-3 S cm-1) in these gels is attributed to ionic conductivity. Very few conductive hydrogels are endowed with additional properties like injectability, adhesiveness and self-healing, which would help to widen their scope for applications. While the dynamic Schiff base coupling in our hydrogels facilitated self-healing and injectable properties, polydopamine imparted tissue adhesiveness. The porosity, rheological, mechanical and conductive properties of the hydrogels are regulated by the CMC-dialdehyde-polydopamine (CMC-D-PDA) content. The hydrogel was evaluated in various bioelectronics applications like ECG monitoring and triboelectric nanogenerators (TENG). The ability of the hydrogel to support cell growth and serve as a template for tissue regeneration was confirmed using in vitro and in vivo studies. In summary, the integration of such remarkable features in the ionic-conductive hydrogel would enable its usage in bioelectronics and biomedical applications.
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