Zhu Xinyi, Wu Si, Yang Chen, Deng Hongbing, Du Yumin, Shi Xiaowen
School of Resource and Environmental Science, Hubei International Scientific and Technological Cooperation Base of Sustainable Resource and Energy, Hubei Engineering Center of Natural Polymers-Based Medical Materials, Hubei Biomass-Resource Chemistry and Environmental Biotechnology Key Laboratory, Wuhan University, Wuhan, 430079, China.
Macromol Rapid Commun. 2021 Feb;42(3):e2000342. doi: 10.1002/marc.202000342. Epub 2020 Aug 17.
The ability to pattern and actuate hydrogels is essential for biomimetics, soft robotics, and biosensors. Here an electrical writing technique with the capability to create both surface and across thickness patterns in dynamic chitosan-H /agarose hydrogel by electronically generated pH gradient is introduced. The diffusible pH cues deprotonate and re-assemble chitosan chains by hydrogen bonds, changing the electrical writing domains from original loose structure to a dense layer and resulting in different mechanical stress and swell ability that causes the hydrogel to deform. The deformable trend can be modulated by writing depth and selective writing area on the surface, and significantly enhanced by temperature increment. Finally, a dual electrical writing process to create three-dimensional patterns and demonstrate programmable shape transition by differing patterns is performed.
对水凝胶进行图案化和驱动的能力对于仿生学、软体机器人技术和生物传感器至关重要。本文介绍了一种电写入技术,该技术能够通过电子产生的pH梯度在动态壳聚糖-H/琼脂糖水凝胶中创建表面和贯穿厚度的图案。可扩散的pH线索使壳聚糖链去质子化并通过氢键重新组装,将电写入区域从原始的松散结构转变为致密层,从而导致不同的机械应力和膨胀能力,使水凝胶发生变形。变形趋势可以通过表面的写入深度和选择性写入区域进行调节,并通过温度升高得到显著增强。最后,进行了双重电写入过程,以创建三维图案并通过不同的图案展示可编程的形状转变。