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Capillarity Guided Patterning of Microliquids
Authors:Myeongwoo Kang  Woohyun Park  Sangcheol Na  Sang‐Min Paik  Hyunjae Lee  Jae Woo Park  Ho‐Young Kim  Noo Li Jeon
Affiliation:1. Division of WCU (World Class University) Multiscale Mechanical Design, Seoul National University, Seoul, Korea;2. Interdisciplinary Program for Bioengineering, Seoul National University, Seoul, Korea;3. Department of Mechanical and Aerospace Engineering, Seoul National University, Seoul, Korea
Abstract:Soft lithography and other techniques have been developed to investigate biological and chemical phenomena as an alternative to photolithography‐based patterning methods that have compatibility problems. Here, a simple approach for nonlithographic patterning of liquids and gels inside microchannels is described. Using a design that incorporates strategically placed microstructures inside the channel, microliquids or gels can be spontaneously trapped and patterned when the channel is drained. The ability to form microscale patterns inside microfluidic channels using simple fluid drain motion offers many advantages. This method is geometrically analyzed based on hydrodynamics and verified with simulation and experiments. Various materials (i.e., water, hydrogels, and other liquids) are successfully patterned with complex shapes that are isolated from each other. Multiple cell types are patterned within the gels. Capillarity guided patterning (CGP) is fast, simple, and robust. It is not limited by pattern shape, size, cell type, and material. In a simple three‐step process, a 3D cancer model that mimics cell–cell and cell–extracellular matrix interactions is engineered. The simplicity and robustness of the CGP will be attractive for developing novel in vitro models of organ‐on‐a‐chip and other biological experimental platforms amenable to long‐term observation of dynamic events using advanced imaging and analytical techniques.
Keywords:lab‐on‐a‐chip devices  liquid patterning  microfluidics  surface tension
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