材料科学
肿胀 的
各向异性
微流控
执行机构
软机器人
自愈水凝胶
复合材料
明胶
剪切减薄
流变学
纳米技术
高分子化学
计算机科学
生物化学
化学
物理
量子力学
人工智能
作者
Albert Gevorkian,Sofia M. Morozova,Sina Kheiri,Nancy Khuu,Heyu Chen,Edmond W. K. Young,Ning Yan,Eugenia Kumacheva
标识
DOI:10.1002/adfm.202010743
摘要
Abstract Polymer hydrogels exhibit actuation properties that result in reversible shape transformations and have promising applications in soft robotics, drug delivery systems, sensors, and microfluidic devices. Actuation occurs due to differential hydrogel swelling and is generally achieved by modulating hydrogel composition. Here a different approach to hydrogel actuation that originates solely from its structural anisotropy is reported. For 3D‐printed single‐layer hydrogels formed by cellulose nanocrystals (CNCs) and gelatin methacryloyl it is shown that shear‐induced orientation of CNCs results in anisotropic mechanical and swelling properties of the hydrogel. Upon swelling in water, planar hydrogels acquire multiple complex 3D shapes that are achieved by i) varying CNC orientation with respect to the shape on the hydrogel sheet and ii) patterning the hydrogel with the regions of shear‐mediated and random CNC orientation. This study shows the capability to generate multiple shapes from the same hydrogel actuator based on the degree of its structural anisotropy. In addition, it introduces a biocompatible nanocolloidal ink with shear‐thinning and self‐healing properties for additive manufacturing of hydrogel actuators.
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