论文标题

空中微流体能够快速制造乳液,悬浮液和3D模块化(BIO)材料

In-air microfluidics enables rapid fabrication of emulsions, suspensions, and 3D modular (bio)materials

论文作者

Visser, Claas Willem, Kamperman, Tom, Karbaat, Lisanne P., Lohse, Detlef, Karperien, Marcel

论文摘要

微流体芯片可对液滴和喷气机提供无与伦比的控制,这些芯片具有所有天然科学的效果。但是,可以通过增加通道吞吐量并直接利用芯片的产出来大大扩展微流体应用,以快速增材制造。我们使用空气中的微流体(一个新的无芯片平台操纵空气中的微观液体流)解锁这些功能。通过通过表面张力驱动的封装来控制液体微夹的组成和空气内影响,我们以直径为20至300UM的单分散乳液,颗粒和纤维,速度为20至300UM,速度比基于芯片的液滴微流体液化剂高10至100倍。此外,一个空中微流体唯一可以在一个步骤中基于模块的三维(3D)多尺度(BIO)材料的生产,因为液滴被部分固化,可以立即将其印刷到底物上。空气中的微流体具有细胞相容性,如3D模块化构造的增材制造所证明的,具有多种细胞类型的量身定制的微环境。它的内线控制,高吞吐量和分辨率以及细胞相容性使内部微流体成为科学,工业和医疗保健的多功能平台技术。

Microfluidic chips provide unparalleled control over droplets and jets, which have advanced all natural sciences. However, microfluidic applications could be vastly expanded by increasing the per-channel throughput and directly exploiting the output of chips for rapid additive manufacturing. We unlock these features with in-air microfluidics, a new chip-free platform to manipulate microscale liquid streams in the air. By controlling the composition and in-air impact of liquid microjets by surface tension-driven encapsulation, we fabricate monodisperse emulsions, particles, and fibers with diameters of 20 to 300um at rates that are 10 to 100 times higher than chip-based droplet microfluidics. Furthermore, in-air microfluidics uniquely enables module-based production of three-dimensional (3D) multiscale (bio)materials in one step because droplets are partially solidified in-flight and can immediately be printed onto a substrate. In-air microfluidics is cytocompatible, as demonstrated by additive manufacturing of 3D modular constructs with tailored micro-environments for multiple cell types. Its in-line control, high throughput and resolution, and cytocompatibility make in-air microfluidics a versatile platform technology for science, industry, and health care.

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