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用于热可编程软致动器的4D打印形状记忆弹性体。

4D Printed Shape-Memory Elastomer for Thermally Programmable Soft Actuators.

作者信息

Song Qingchuan, Chen Yunong, Slesarenko Viacheslav, Zhu Pang, Hamza Ahmed, Hou Peilong, Helmer Dorothea, Kotz-Helmer Frederik, Rapp Bastian E

机构信息

Laboratory of Process Technology, Department of Microsystems Engineering (IMTEK), NeptunLab, Georges-Köhler-Allee 103, Freiburg 79110, Germany.

Cluster of Excellence livMatS @ FIT - Freiburg Center for Interactive Materials and Bioinspired Technologies, University of Freiburg, Georges-Köhler-Allee 105, D-79110 Freiburg, Germany.

出版信息

ACS Appl Mater Interfaces. 2023 Aug 30;15(34):40923-40932. doi: 10.1021/acsami.3c07436. Epub 2023 Aug 18.

Abstract

Polymeric shape-memory elastomers can recover to a permeant shape from any programmed deformation under external stimuli. They are mostly cross-linked polymeric materials and can be shaped by three-dimensional (3D) printing. However, 3D printed shape-memory polymers so far only exhibit elasticity above their transition temperature, which results in their programmed shape being inelastic or brittle at lower temperatures. To date, 3D printed shape-memory elastomers with elasticity both below and above their transition temperature remain an elusive goal, which limits the application of shape-memory materials as elastic materials at low temperatures. In this paper, we printed, for the first time, a custom-developed shape-memory elastomer based on polyethylene glycol using digital light processing, which possesses elasticity and stretchability in a wide temperature range, below and above the transition temperature. Young's modulus in these two states can vary significantly, with a difference of up to 2 orders of magnitude. This marked difference in Young's modulus imparts excellent shape-memory properties to the material. The difference in Young's modulus at different temperatures allows for the programming of the pneumatic actuators by heating and softening specific areas. Consequently, a single actuator can exhibit distinct movement modes based on the programming process it undergoes.

摘要

聚合物形状记忆弹性体在外部刺激下可以从任何预设的变形恢复到永久形状。它们大多是交联聚合物材料,并且可以通过三维(3D)打印进行成型。然而,迄今为止,3D打印的形状记忆聚合物仅在其转变温度以上表现出弹性,这导致其预设形状在较低温度下无弹性或易碎。到目前为止,在转变温度以下和以上均具有弹性的3D打印形状记忆弹性体仍然是一个难以实现的目标,这限制了形状记忆材料作为低温弹性材料的应用。在本文中,我们首次使用数字光处理技术打印了一种基于聚乙二醇的定制开发的形状记忆弹性体,该弹性体在转变温度以下和以上的宽温度范围内都具有弹性和拉伸性。这两种状态下的杨氏模量会有显著变化,相差可达2个数量级。杨氏模量的这种显著差异赋予了材料优异的形状记忆性能。不同温度下杨氏模量的差异使得通过加热和软化特定区域来对气动致动器进行编程成为可能。因此,单个致动器可以根据其所经历的编程过程表现出不同的运动模式。

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