材料科学
3D打印
数字光处理
形状记忆聚合物
数码印刷
制作
软机器人
聚合物
3d打印机
航空航天
复合材料
纳米技术
机械工程
计算机科学
工程制图
机器人
人工智能
政治学
病理
工程类
法学
替代医学
医学
投影机
计算机视觉
作者
Biao Zhang,Honggeng Li,Jianxiang Cheng,Haitao Ye,Amir Hosein Sakhaei,Chao Yuan,Ping Rao,Yuanfang Zhang,Zhe Chen,Rong Wang,Xiangnan He,Ji Liu,Rui Xiao,Shaoxing Qu,Qi Ge
标识
DOI:10.1002/adma.202101298
摘要
Abstract 4D printing is an emerging fabrication technology that enables 3D printed structures to change configuration over “time” in response to an environmental stimulus. Compared with other soft active materials used for 4D printing, shape‐memory polymers (SMPs) have higher stiffness, and are compatible with various 3D printing technologies. Among them, ultraviolet (UV)‐curable SMPs are compatible with Digital Light Processing (DLP)‐based 3D printing to fabricate SMP‐based structures with complex geometry and high‐resolution. However, UV‐curable SMPs have limitations in terms of mechanical performance, which significantly constrains their application ranges. Here, a mechanically robust and UV‐curable SMP system is reported, which is highly deformable, fatigue resistant, and compatible with DLP‐based 3D printing, to fabricate high‐resolution (up to 2 µm), highly complex 3D structures that exhibit large shape change (up to 1240%) upon heating. More importantly, the developed SMP system exhibits excellent fatigue resistance and can be repeatedly loaded more than 10 000 times. The development of the mechanically robust and UV‐curable SMPs significantly improves the mechanical performance of the SMP‐based 4D printing structures, which allows them to be applied to engineering applications such as aerospace, smart furniture, and soft robots.
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