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Optofluidic fabrication for 3D-shaped particles

机译:3D形颗粒的光流制造

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Complex three-dimensional (3D)-shaped particles could play unique roles in biotechnology, structural mechanics and self-assembly. Current methods of fabricating 3D-shaped particles such as 3D printing, injection moulding or photolithography are limited because of low-resolution, low-throughput or complicated/expensive procedures. Here, we present a novel method called optofluidic fabrication for the generation of complex 3D-shaped polymer particles based on two coupled processes: inertial flow shaping and ultraviolet (UV) light polymerization. Pillars within fluidic platforms are used to deterministically deform photosensitive precursor fluid streams. The channels are then illuminated with patterned UV light to polymerize the photosensitive fluid, creating particles with multi-scale 3D geometries. The fundamental advantages of optofluidic fabrication include high-resolution, multi-scalability, dynamic tunability, simple operation and great potential for bulk fabrication with full automation. Through different combinations of pillar configurations, flow rates and UV light patterns, an infinite set of 3D-shaped particles is available, and a variety are demonstrated.
机译:复杂的三维(3D)形颗粒可以在生物技术,结构力学和自组装中发挥独特作用。由于低分辨率,低通量或复杂/昂贵的程序,目前制造3D形状颗粒的方法(例如3D打印,注塑或光刻)受到限制。在这里,我们基于两种耦合过程:惯性流整形和紫外线(UV)聚合,提出了一种称为光流体制造的新颖方法,用于生成复杂的3D形状的聚合物颗粒。流体平台内的支柱用于确定性地使光敏前体流体流变形。然后用图案化的UV光照射通道,以聚合光敏流体,产生具有多尺度3D几何形状的颗粒。光流体制造的基本优点包括高分辨率,多可扩展性,动态可调性,简单的操作以及具有完全自动化的批量制造的巨大潜力。通过支柱配置,流速和UV光图案的不同组合,可以获得无穷的3D形状的粒子集,并进行了各种演示。

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