Microparticles Focusing Inside Rigid Zigzag Microchannels and Application to Bacteria Enrichment
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Abstract
Sample preparation is vital for biomedical diagnostics, environmental monitoring, and food safety, with enrichment of microparticles and microorganisms essential for reliable detection. Label-free microfluidic enrichment offers a portable alternative to centrifugation and filtration, which require bulky equipment or external forces. Passive inertial microfluidics, particularly zigzag microchannels, enable efficient, high-throughput particle manipulation through Dean flow. However, knowledge gaps remain in understanding micrometer-sized behavior in rigid zigzag channels, evaluating design parameters, and predicting Dean drag velocity and force. This thesis systematically investigates rigid zigzag microchannels for focusing and enrichment. Objective 1 compared rigid (PMMA) and soft (PDMS) devices using microparticles (1-3.9 µm) and E. coli bacteria, showing superior focusing in rigid channels. Objective 2 employed COMSOL Multiphysics and Taguchi DOE to optimize geometry, achieving > 80% focusing efficiency. Objective 3 demonstrated enrichment of GFP-labeled E. coli with factors of 2.6 and 8 after one and two passes while preserving ~84% viability. This work establishes a robust, biocompatible platform with strong potential for portable diagnostics.