Engineering advancements in microfluidic systems for enhanced mixing at low Reynolds numbers

IF 2.6 4区 工程技术 Q2 BIOCHEMICAL RESEARCH METHODS Biomicrofluidics Pub Date : 2024-01-29 DOI:10.1063/5.0178939
Vamsi Vikram Gande, Prem K. R. Podupu, Bianca Berry, Nandkishor K. Nere, S. Pushpavanam, Meenesh R. Singh
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Abstract

Mixing within micro- and millichannels is a pivotal element across various applications, ranging from chemical synthesis to biomedical diagnostics and environmental monitoring. The inherent low Reynolds number flow in these channels often results in a parabolic velocity profile, leading to a broad residence time distribution. Achieving efficient mixing at such small scales presents unique challenges and opportunities. This review encompasses various techniques and strategies to evaluate and enhance mixing efficiency in these confined environments. It explores the significance of mixing in micro- and millichannels, highlighting its relevance for enhanced reaction kinetics, homogeneity in mixed fluids, and analytical accuracy. We discuss various mixing methodologies that have been employed to get a narrower residence time distribution. The role of channel geometry, flow conditions, and mixing mechanisms in influencing the mixing performance are also discussed. Various emerging technologies and advancements in microfluidic devices and tools specifically designed to enhance mixing efficiency are highlighted. We emphasize the potential applications of micro- and millichannels in fields of nanoparticle synthesis, which can be utilized for biological applications. Additionally, the prospects of machine learning and artificial intelligence are offered toward incorporating better mixing to achieve precise control over nanoparticle synthesis, ultimately enhancing the potential for applications in these miniature fluidic systems.
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微流体系统在低雷诺数下增强混合方面的工程进展
从化学合成到生物医学诊断和环境监测,微通道和毫微通道内的混合是各种应用中的关键因素。这些通道中固有的低雷诺数流动通常会产生抛物线速度曲线,从而导致广泛的停留时间分布。在如此小的尺度上实现高效混合既是独特的挑战,也是难得的机遇。本综述涵盖了评估和提高这些封闭环境中混合效率的各种技术和策略。它探讨了微通道和毫通道中混合的重要性,强调了其与增强反应动力学、混合流体的均匀性和分析精度的相关性。我们讨论了为获得更窄的停留时间分布而采用的各种混合方法。我们还讨论了通道几何形状、流动条件和混合机制在影响混合性能方面的作用。重点介绍了微流体设备和工具中专门用于提高混合效率的各种新兴技术和进展。我们强调了微通道和毫通道在纳米粒子合成领域的潜在应用,它们可用于生物应用。此外,我们还提出了机器学习和人工智能的发展前景,即通过更好的混合实现对纳米粒子合成的精确控制,最终提高这些微型流体系统的应用潜力。
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来源期刊
Biomicrofluidics
Biomicrofluidics 生物-纳米科技
CiteScore
5.80
自引率
3.10%
发文量
68
审稿时长
1.3 months
期刊介绍: Biomicrofluidics (BMF) is an online-only journal published by AIP Publishing to rapidly disseminate research in fundamental physicochemical mechanisms associated with microfluidic and nanofluidic phenomena. BMF also publishes research in unique microfluidic and nanofluidic techniques for diagnostic, medical, biological, pharmaceutical, environmental, and chemical applications. BMF offers quick publication, multimedia capability, and worldwide circulation among academic, national, and industrial laboratories. With a primary focus on high-quality original research articles, BMF also organizes special sections that help explain and define specific challenges unique to the interdisciplinary field of biomicrofluidics. Microfluidic and nanofluidic actuation (electrokinetics, acoustofluidics, optofluidics, capillary) Liquid Biopsy (microRNA profiling, circulating tumor cell isolation, exosome isolation, circulating tumor DNA quantification) Cell sorting, manipulation, and transfection (di/electrophoresis, magnetic beads, optical traps, electroporation) Molecular Separation and Concentration (isotachophoresis, concentration polarization, di/electrophoresis, magnetic beads, nanoparticles) Cell culture and analysis(single cell assays, stimuli response, stem cell transfection) Genomic and proteomic analysis (rapid gene sequencing, DNA/protein/carbohydrate arrays) Biosensors (immuno-assay, nucleic acid fluorescent assay, colorimetric assay, enzyme amplification, plasmonic and Raman nano-reporter, molecular beacon, FRET, aptamer, nanopore, optical fibers) Biophysical transport and characterization (DNA, single protein, ion channel and membrane dynamics, cell motility and communication mechanisms, electrophysiology, patch clamping). Etc...
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