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Capillary Force Driven Self-Assembly of Anisotropic Hierarchical Structures Prepared by Femtosecond Laser 3D Printing and Their Applications in Crystallizing Microparticles

机译:飞秒激光3D打印制备的各向异性层级结构的毛细管力驱动自组装及其在微粒结晶中的应用

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摘要

The hierarchical structures are the derivation of various functionalities in the natural world and have inspired broad practical applications in chemical systhesis and biological manipulation. However, traditional top-down fabrication approaches suffered from low complexity. We propose a laser printing capillary-assisted self-assembly (LPCS) strategy for fabricating regular periodic structures. Microscale pillars are first produced by the localized femtosecond laser polymerization and are subsequently self-assembled into periodic hierarchical architectures with the assistance of controlled capillary force. Moreover, based on anisotropic assemblies of micropillars, the LPCS method is further developed for the preparation of more complicated and advanced functional microstructures. Pillars cross section, height, and spatial arrangement can be tuned to guide capillary force, and diverse assemblies with different configurations are thus achieved. Finally, we developed a strategy for growing microanoparticles in designed spatial locations through solution-evaporation self-assembly induced by morphology. Due to the high flexibility of LPCS method, the special arrangements, sizes, and distribution density of the microanoparticles can be controlled readily. Our method will be employed not only to fabricate anisotropic hierarchical structures but also to design and manufacture organic/inorganic microparticles.
机译:层次结构是自然界中各种功能的派生,并激发了化学合成和生物操作中的广泛实际应用。然而,传统的自上而下的制造方法具有较低的复杂度。我们提出了一种激光印刷的毛细管辅助自组装(LPCS)策略来制造规则的周期性结构。微型柱首先通过局部飞秒激光聚合产生,然后在受控的毛细作用力的帮助下自组装成周期性的分层结构。此外,基于微柱的各向异性组装,进一步开发了LPCS方法以制备更复杂和高级的功能微结构。可以调整支柱的横截面,高度和空间布置以引导毛细管力,从而实现具有不同配置的各种组件。最后,我们制定了一种通过形态学诱导的溶液蒸发自组装在设计的空间位置中生长微/纳米粒子的策略。由于LPCS方法具有高度的灵活性,因此可以很容易地控制微粒/纳米颗粒的特殊排列,尺寸和分布密度。我们的方法将不仅用于制造各向异性的分层结构,而且还将用于设计和制造有机/无机微粒。

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