执行机构
材料科学
制作
弹性体
毫米
变形(气象学)
实现(概率)
曲面(拓扑)
机械工程
计算机科学
纳米技术
复合材料
光学
人工智能
几何学
物理
工程类
医学
统计
替代医学
数学
病理
作者
Joselle M. McCracken,Jonathan D. Hoang,Jeremy A. Herman,Kelsey Lynch,Timothy J. White
标识
DOI:10.1002/admt.202202067
摘要
Abstract Liquid crystalline elastomers (LCE) are thermally cyclable, compliant actuators with compelling mechanical properties. The large and programmable deformation of LCE has led to numerous functional examinations spanning optics, medical devices, and robotics. A well‐established method to prepare complex LCE actuators is to utilize surface‐enforced photoalignment. Herein, a facile and scalable approach is reported to circumvent the physical limits of surface‐enforced alignment (e.g., samples that are 50 µm or less) to amplify the achievable force output in LCE. Applying an approach termed direct layering, the thermomechanical response of LCE elements prepared with +1 disclination patterns in a range of compositions and thicknesses is contrasted. The design and preparation of +1 disclination patterns and arrays is explored to assess the contribution of sample geometry and overlap to deformation and force output. The methodology detailed in this contribution allows for the preparation of elements ≈1 mm in thickness that are capable of actuating large objects. Furthermore, the fabrication of these elements uniquely enables the realization of mechanical instabilities to hasten the actuation rate in response to thermal change and to enable leaping.
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