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图案化电极辅助一步法制备具有复杂各向异性结构的仿生变形水凝胶。

Patterned Electrode Assisted One-Step Fabrication of Biomimetic Morphing Hydrogels with Sophisticated Anisotropic Structures.

机构信息

Ministry of Education Key Laboratory of Macromolecular Synthesis and Functionalization, Department of Polymer Science and Engineering, Zhejiang University, Hangzhou, 310027, China.

Bavarian Polymer Institute and Department of Chemistry, University of Bayreuth, Universitätsstrasse 30, Bayreuth, 95440, Germany.

出版信息

Adv Sci (Weinh). 2021 Dec;8(24):e2102353. doi: 10.1002/advs.202102353. Epub 2021 Oct 27.

Abstract

Anisotropic structures are ubiquitous in nature, affording fascinating morphing behaviors. Biomimetic morphing materials can be developed by spatially controlling the orientations of molecules or nanofillers that produce anisotropic responses and internal stresses under external stimuli. However, it remains a serious challenge to fabricate materials with sophisticated anisotropic architectures. Here, a facile strategy to fabricate morphing hydrogels with elaborately ordered structures of nanosheets, which are oriented under distributed electric field and immobilized by polymerization to form a poly(N-isopropylacrylamide) matrix, is proposed. Diverse sophisticated anisotropic structures are obtained by engineering the electric field through the patterns and relative locations of the electrodes. Upon heating, the monolithic hydrogels with through-thickness and/or in-plane gradients in orientation of the nanosheets deform into various three-dimensional configurations. After incorporating gold nanoparticles, the hydrogels become photoresponsive and capable of programmable motions, for example, dynamic twisting and flipping under spatiotemporal stimuli. Such a strategy of using patterned electrodes to generate distributed electric field should be applicable to systems of liquid crystals or charged particles/molecules to direct orientation or electrophoresis and form functional structures. The biomimetically architectured hydrogels would be ideal materials to develop artificial muscles, soft actuators/robots, and biomedical devices with versatile applications.

摘要

各向异性结构在自然界中无处不在,赋予了物体迷人的变形行为。通过空间控制分子或纳米填料的取向,可以开发仿生变形材料,这些分子或纳米填料在外力刺激下产生各向异性响应和内应力。然而,制造具有复杂各向异性结构的材料仍然是一个严峻的挑战。在这里,提出了一种简便的策略来制造具有精心设计的纳米片有序结构的变形水凝胶,这些纳米片在分布电场下取向,并通过聚合固定形成聚(N-异丙基丙烯酰胺)基质。通过对电极的图案和相对位置来对电场进行工程设计,从而获得各种复杂的各向异性结构。加热后,具有纳米片厚度和/或面内各向异性取向的整体水凝胶会变形为各种三维形状。加入金纳米粒子后,水凝胶具有光响应性和可编程运动能力,例如在时空刺激下进行动态扭曲和翻转。这种使用图案化电极产生分布电场的策略应该适用于液晶或带电粒子/分子系统,以引导取向或电泳并形成功能结构。这种仿生结构的水凝胶将是开发具有多种应用的人工肌肉、软执行器/机器人和生物医学设备的理想材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/200a/8693068/4e84cf834f4d/ADVS-8-2102353-g006.jpg

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