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首页> 外文期刊>ACS applied materials & interfaces >Combining Wax Printing with Hot Embossing for the Design of Geometrically Well-Defined Microfluidic Papers
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Combining Wax Printing with Hot Embossing for the Design of Geometrically Well-Defined Microfluidic Papers

机译:将蜡印刷与热压纹打印结合在几何定义微流体纸张设计中

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摘要

A simple, efficient, and repeatable combination of wax printing and hot embossing is reported. This combination yields microfluidic channels in paper, where fluid transport driven by paper-intrinsic capillary forces takes place inside the noncompressed areas, whereas embossed and wax-bonded areas serve as hydrophobic barriers laterally confining the fluid flow. Lab-made paper sheets first coated with a hydrophobic wax were hot-embossed with a tailor-made metal stamp. Both paper-intrinsic (e.g., grammage, fiber type) and paper-extrinsic parameters (e.g., embossing force) were studied for their influence on the geometry of the embossed structures and the resulting redistribution of the wax within the paper matrix. Embossing of wax-printed paper at temperatures above the wax melting point was completed within 15 s. Cotton linters papers required higher embossing forces than eucalyptus papers, which can be explained by their different intrinsic mechanical properties. In summary, both paper-intrinsic and paper-extrinsic parameters were found to have strong impact on resolution and reproducibility of the channels. All in all, the approach yields microfluidic channels in a fast and robust and reproducible manner with comparably low constrains on the precision of manufacturing parameters, such as embossing time, force, or temperature. Most importantly, embossing greatly reduces the lateral spreading of the wax as seen with melting approaches and therefore allows for a much higher feature density than the latter.
机译:报道了一种简单,高效,可重复的蜡印刷和热压饰板的组合。该组合在纸中产生微流体通道,其中通过纸张固有毛细管力驱动的流体输送在非压缩区域内发生,而压花和蜡粘合区域用作横向限制流体流动的疏水屏障。首先用疏水性蜡涂有疏水性蜡的实验室纸张用量身定制的金属印章热浮雕。研究了纸质内在(例如,咯,纤维型)和纸质外部参数(例如压花力),以影响压花结构的几何形状和纸质基质内蜡的再分布。在15秒内完成蜡熔点以上温度的蜡印刷纸的压花。棉花纸纸需要比桉树纸更高的压花力,这可以通过其不同的内在力学性能来解释。总之,发现纸张内在和纸质外部参数都对渠道的分辨率和再现性产生了强烈影响。总而言之,该方法以快速且稳健的和可重复的方式产生微流体通道,其对制造参数的精度相比具有相对的限制,例如压花时间,力或温度。最重要的是,压花大大减少了熔融方法所看到的蜡的横向扩散,因此允许比后者更高的特征密度。

著录项

  • 来源
    《ACS applied materials & interfaces》 |2019年第4期|共10页
  • 作者单位

    Tech Univ Darmstadt Lab Macromol Chem &

    Paper Chem Alarich Weiss Str 8 D-64287 Darmstadt Germany;

    Karlsruher Inst Technol Inst Mikrostrukturtech Hermann von Helmholtz Pl 1 D-76344 Eggenstein Leopoldshafen Germany;

    Tech Univ Darmstadt Lab Macromol Chem &

    Paper Chem Alarich Weiss Str 8 D-64287 Darmstadt Germany;

    Karlsruher Inst Technol Inst Mikrostrukturtech Hermann von Helmholtz Pl 1 D-76344 Eggenstein Leopoldshafen Germany;

    Tech Univ Darmstadt Inst Printing Sci &

    Technol Magdalenenstr 2 D-64289 Darmstadt Germany;

    Tech Univ Darmstadt Lab Macromol Chem &

    Paper Chem Alarich Weiss Str 8 D-64287 Darmstadt Germany;

    Karlsruher Inst Technol Inst Mikrostrukturtech Hermann von Helmholtz Pl 1 D-76344 Eggenstein Leopoldshafen Germany;

    Tech Univ Darmstadt Lab Macromol Chem &

    Paper Chem Alarich Weiss Str 8 D-64287 Darmstadt Germany;

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

    hot embossing; paper-based microfluidics; capillary flow; wax printing;

    机译:热压花;纸质微流体;毛细血管流动;蜡印刷;

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