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4D Printing of a Light-Driven Soft Actuator with Programmed Printing Density

机译:4D打印带有编程印刷密度的轻型驱动软致动器

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摘要

There is a growing interest in the concept of four-dimensional (4D) printing that combines a three-dimensional (3D) manufacturing process with dynamic modulation for bioinspired soft materials exhibiting more complex functionality. However, conventional approaches have drawbacks of low resolution, control of internal micro/nanostructure, and creation of fast, comple:' actuation due to a lack of high-resolution fabrication technology and suitablt photoresist for soft materials. Here, we report an approach of 4D printing that develops a bioinspired soft actuator with a defined 3D geometry and programmed printing density. Multiphoton lithography (MPL) allows for controlling printing density in gels at pixel-by-pixel with a resolution of a few hundreds of nanometers, which tune swelling behaviors of gels in response to external stimuli. We printed a 3D soft actuator composed of thermoresponsive poly(N-isopropylacrylamide) (PNIPAm) and gold nanorods (AuNRs). To improve the resolution of printing, we synthesized a functional, thermoresponsive macrocrosslinker. Through plasmonic heating by AuNRs, nanocomposite-based soft actuators undergo nonequilibrium, programmed, and fast actuation. Light-mediated manufacture and manipulation (MPL and photothcrmal effect) offer the feasibility of 4D printing toward adaptive bioinspired soft materials.
机译:在四维(4D)印刷的概念中,将三维(3D)制造过程的概念产生了越来越多的兴趣,该制造工艺与表现出更复杂的功能的生物透明软材料的动态调制。然而,常规方法具有低分辨率,内部微/纳米结构的控制,以及快速的,伴随的创造:'由于缺少高分辨率制造技术和软材料的缺乏光致抗蚀剂而致动。这里,我们报告了一种方法的4D打印,该方法开发一种具有定义的3D几何和编程的打印密度的生物透明软致动器。多光子光刻(MPL)允许在逐个像素中控制凝胶中的打印密度,其分辨率为几百纳米,响应于外部刺激而调整凝胶的肿胀行为。我们印刷了由热响应性聚(N-异丙基丙烯酰胺)(PNIPAM)和金纳米棒(AUNR)组成的3D软致动器。为了提高印刷的分辨率,我们合成了一个功能性的热响应性Macrocrosslinker。通过AUNR的等离子体加热,基于纳米复合材料的软致动器经历非挤压,编程和快速致动。光介导的制造和操纵(MPL和PhotoTcrmal效应)为适应性生物悬浮的软材料提供4D印刷的可行性。

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