nanolithography toolbox—Simplifying the design complexity of microfluidic chips

Haoqing Zhang, J. Pekárek, Jianguo Feng, Xiaocheng Liu, Huanan Li, Hanliang Zhu, V. Svatos, I. Gablech, P. Podešva, Sheng Ni, L. Yobas, P. Neužil
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引用次数: 4

Abstract

Microfluidic devices typically require complex shapes such as funnels, spirals, splitters, channels with different widths, or customized objects of arbitrary complexity with a smooth transition between these elements. Device layouts are generally designed by software developed for the design of integrated circuits or by general computer-aided design drawing tools. Both methods have their limitations, making these tasks time consuming. Here, a script-based, time-effective method to generate the layout of various microfluidic chips with complex geometries is presented. The present work uses the nanolithography toolbox (NT), a platform-independent software package, which employs parameterized fundamental blocks (cells) to create microscale and nanoscale structures. In order to demonstrate the functionality and efficiency of the NT, a few classical microfluidic devices were designed using the NT and then fabricated in glass/silicon using standard microfabrication techniques and in poly(dimethylsiloxane) using soft lithography as well as more complex techniques used for flow-through calorimetry. In addition, the functionality of a few of the fabricated devices was tested. The powerful method proposed allows the creation of microfluidic devices with complex layouts in an easy way, simplifying the design process and improving design efficiency. Thus, it holds great potential for broad applications in microfluidic device design.
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纳米光刻工具箱-简化微流控芯片的设计复杂性
微流控装置通常需要复杂的形状,如漏斗,螺旋,分离器,不同宽度的通道,或任意复杂性的定制对象,这些元素之间的平滑过渡。器件布局一般是通过为集成电路设计而开发的软件或通用计算机辅助设计绘图工具来设计的。这两种方法都有其局限性,使得这些任务非常耗时。本文提出了一种基于脚本的、时效化的方法来生成具有复杂几何形状的各种微流控芯片的布局。目前的工作使用纳米光刻工具箱(NT),一个独立于平台的软件包,它采用参数化的基本块(细胞)来创建微尺度和纳米尺度的结构。为了证明NT的功能和效率,使用NT设计了一些经典的微流控装置,然后使用标准微加工技术在玻璃/硅中制造,使用软光刻技术在聚(二甲基硅氧烷)中制造,以及用于流动量热法的更复杂的技术。此外,还对部分器件的功能进行了测试。所提出的强大方法可以简单地创建具有复杂布局的微流控器件,简化了设计过程,提高了设计效率。因此,它在微流控器件设计中具有广阔的应用前景。
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