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用于植入式视网膜电子器件的形状可变形水凝胶/弹性体双层膜

Shape Morphable Hydrogel/Elastomer Bilayer for Implanted Retinal Electronics.

作者信息

Zhou Muru, Kang Do Hyun, Kim Jinsang, Weiland James D

机构信息

Macromolecular Science and Engineering, University of Michigan, Ann Arbor, MI 48109, USA.

Department of Materials Science and Engineering, University of Michigan, Ann Arbor, MI 48109, USA.

出版信息

Micromachines (Basel). 2020 Apr 9;11(4):392. doi: 10.3390/mi11040392.

Abstract

Direct fabrication of a three-dimensional (3D) structure using soft materials has been challenging. The hybrid bilayer is a promising approach to address this challenge because of its programable shape-transformation ability when responding to various stimuli. The goals of this study are to experimentally and theoretically establish a rational design principle of a hydrogel/elastomer bilayer system and further optimize the programed 3D structures that can serve as substrates for multi-electrode arrays. The hydrogel/elastomer bilayer consists of a hygroscopic polyacrylamide (PAAm) layer cofacially laminated with a water-insensitive polydimethylsiloxane (PDMS) layer. The asymmetric volume change in the PAAm hydrogel can bend the bilayer into a curvature. We manipulate the initial monomer concentrations of the pre-gel solutions of PAAm to experimentally and theoretically investigate the effect of intrinsic mechanical properties of the hydrogel on the resulting curvature. By using the obtained results as a design guideline, we demonstrated stimuli-responsive transformation of a PAAm/PDMS flower-shaped bilayer from a flat bilayer film to a curved 3D structure that can serve as a substrate for a wide-field retinal electrode array.

摘要

使用软材料直接制造三维(3D)结构一直具有挑战性。混合双层是应对这一挑战的一种很有前景的方法,因为它在响应各种刺激时具有可编程的形状变换能力。本研究的目标是通过实验和理论建立水凝胶/弹性体双层系统的合理设计原则,并进一步优化可作为多电极阵列基板的程序化3D结构。水凝胶/弹性体双层由与水不敏感的聚二甲基硅氧烷(PDMS)层共面层压的吸湿聚丙烯酰胺(PAAm)层组成。PAAm水凝胶中不对称的体积变化可使双层弯曲成曲率。我们通过控制PAAm预凝胶溶液的初始单体浓度,从实验和理论上研究水凝胶的固有机械性能对所得曲率的影响。以获得的结果作为设计指导,我们展示了PAAm/PDMS花形双层从扁平双层膜到可作为宽视野视网膜电极阵列基板的弯曲3D结构的刺激响应转变。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3085/7231290/7d65084e92fc/micromachines-11-00392-g0A1.jpg

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