材料科学
弹性体
变形
各向同性
软机器人
复合材料
变形(气象学)
智能材料
液晶
形状记忆合金
格子(音乐)
微流控
软质材料
纳米技术
拓扑(电路)
光电子学
执行机构
计算机科学
光学
物理
人工智能
组合数学
数学
计算机视觉
声学
作者
Arda Kotikian,Audrey A. Watkins,Giovanni Bordiga,Andrew Spielberg,Zoey S. Davidson,Katia Bertoldi,Jennifer A. Lewis
标识
DOI:10.1002/adma.202310743
摘要
Abstract An integrated design, modeling, and multi‐material 3D printing platform for fabricating liquid crystal elastomer (LCE) lattices in both homogeneous and heterogeneous layouts with spatially programmable nematic director order and local composition is reported. Depending on their compositional topology, these lattices exhibit different reversible shape‐morphing transformations upon cycling above and below their respective nematic‐to‐isotropic transition temperatures. Further, it is shown that there is good agreement between their experimentally observed deformation response and model predictions for all LCE lattice designs evaluated. Lastly, an inverse design model is established and the ability to print LCE lattices with the predicted deformation behavior is demonstrated. This work opens new avenues for creating architected LCE lattices that may find potential application in energy‐dissipating structures, microfluidic pumping, mechanical logic, and soft robotics.
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