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Continuous High-Throughput Fabrication of Architected Micromaterials via In-Air Photopolymerization

机译:通过空气光聚合,连续高通量制造架构微观材料

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摘要

Recent advances in optical coding, drug delivery, diagnostics, tissue engineering, shear-induced gelation, and functionally engineered rheology crucially depend on microparticles and microfibers with tunable shape, size, and composition. However, scalable manufacturing of the required complex micromaterials remains a long-standing challenge. Here in-air polymerization of liquid jets is demonstrated as a novel platform to produce microparticles and microfibers with tunable size, shape, and composition at high throughput (100 mL h(-1) per nozzle). The polymerization kinetics is quantitatively investigated and modeled as a function of the ink composition, the UV light intensity, and the velocity of the liquid jet, enabling engineering of complex micromaterials in jetting regimes. The size, morphology, and local chemistry of micromaterials are independently controlled, as highlighted by producing micromaterials using 5 different photopolymers as well as multi-material composites. Simultaneous optimization of these control parameters yields rapid fabrication of stimuli-responsive Janus fibers that function as soft actuators. Finally, in-air photopolymerization enables control over the curvature of printed droplets, as highlighted by high-throughput printing of microlenses with tunable focal distance. The combination of rapid processing and tunability in composition and architecture opens a new route toward applications of tailored micromaterials in soft matter, medicine, pharmacy, and optics.
机译:光学编码,药物递送,诊断,组织工程,剪切诱导的凝胶化和功能工程流变的最新进展至关重要地取决于微粒和微纤维,具有可调谐形状,尺寸和组成。然而,可扩展的所需的复杂微材料的制造仍然是一个长期存在的挑战。这里,液体喷射的空气聚合作为新颖的平台,以产生微粒和微纤维,以在高通量(> 100ml H(-1)每个喷嘴)的可调尺寸,形状和组合物)。定量研究聚合动力学作为液体射流的液体组合物,UV光强度和液体射流的速度,使得射流制度中的复杂微观材料的工程能够进行建模。通过使用5种不同的光聚合物以及多重材料复合材料产生微材料和多材料复合材料,独立地控制微材料的尺寸,形貌和局部化学和局部化学。这些控制参数的同时优化产生刺激响应的Janus纤维的快速制造,其功能是软致动器的功能。最后,空中光聚合使得能够控制印刷液滴的曲率,如通过可调节焦距的微透镜的高通量打印突出。组成和建筑中快速加工和可调性的组合为柔软物质,医药,药房和光学系统中定制的微材料进行了新的途径。

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  • 来源
    《Advanced Materials》 |2021年第3期|2006336.1-2006336.9|共9页
  • 作者单位

    Univ Twente Fac Engn Technol Dept Thermal & Fluid Engn Engn Fluid Dynam Grp NL-7500 AE Enschede Netherlands;

    Univ Twente Fac Engn Technol Dept Thermal & Fluid Engn Engn Fluid Dynam Grp NL-7500 AE Enschede Netherlands|Univ Twente Fac Sci & Technol Tech Med Ctr Dept Dev Bioengn NL-7500 AE Enschede Netherlands;

    Univ Twente Fac Engn Technol Dept Thermal & Fluid Engn Engn Fluid Dynam Grp NL-7500 AE Enschede Netherlands;

    Univ Twente Fac Sci & Technol Tech Med Ctr Dept Dev Bioengn NL-7500 AE Enschede Netherlands|Harvard Med Sch Brigham & Womens Hosp Div Engn Med Cambridge MA 02139 USA;

    Univ Twente Fac Engn Technol Dept Thermal & Fluid Engn Engn Fluid Dynam Grp NL-7500 AE Enschede Netherlands;

    Univ Twente Fac Engn Technol Dept Thermal & Fluid Engn Engn Fluid Dynam Grp NL-7500 AE Enschede Netherlands;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    in#8208; air photopolymerization; liquid jets; microfibers; microparticles; shape control;

    机译:空气光聚合;液体喷射;微纤维;微粒;形状控制;

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