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所在平台: Udemy |
课程主页: https://www.udemy.com/course/nanotechnology-part-2-micro-fluidics-droplets-and-capsules/
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课程名称:纳米技术第二部分:微流体学、液滴与胶囊 课程概述:纳米尺度的流体学或微流体学研究微观尺度下流体的行为。在这种情况下,流体的性质会发生根本性的变化。例如,在非常低的雷诺数下,水在微小通道中的表现就像蜂蜜一样粘稠(而不改变粘度,仅通过减小尺寸)。流体-液体界面带有电荷,分子在此聚集。利用机械压力通过微通道泵送流体是一项挑战。研究表明,施加小电流所需的能量远低于机械压力,这被称为电渗流。这种现象也影响像细菌或微型机器人这样的微小游动者,它们无法采纳大型生物的运动策略。 生物细胞与其他人造机器的机械设计截然不同。细胞是微流体容器,内部的分子由于超短的交通和扩散时间,会迅速混合和反应,几次每秒就会发生交汇。过去几十年,已发现新的微流体装置,利用小尺度流体的特性。例如,玻璃毛细管和PDMS微流体可以在低雷诺数下操控流体,以制造液滴和双重乳液。这些产品在设计新型超轻材料、农业、化妆品、医学和环境科学等领域具有广泛应用。举例来说,利用皮升液滴,可以在感兴趣的目标上进行高通量筛选,以极少的试剂在短时间内进行数千次实验,从而加速新药发现过程中的反应筛选。 本课程包括简化的计算和多个示例,适合对实验液滴微流体学感兴趣的学生和科研人员。
Nanoscale fluidics or microfluidics studies the behavior of fluids at the microscale. The properties of fluids become fundamentally different. For example, at very low Reynolds, number water in tiny channels becomes as viscous as honey (without a change of viscosity, only by reducing the dimensions). The fluid-liquid interface is charged, where molecules accumulate. It is challenging to pump fluids through microchannels using mechanical pressure. It turned out that applying small currents requires much less energy or electroosmosis. It also affects tiny swimmers like bacteria or microrobots, which cannot utilize the motion strategy of big creatures. Biological cells are very different from the mechanical design of other man-made machines. Cells are microfluidic containers with rapidly mixing and reacting molecules that meet several times per second due to ultra-short traffic and diffusion time. During past decades new microfluidic devices have been discovered that utilize properties of fluids at a small scale. For example, glass capillary and PDMS microfluidics are used to manipulate fluids at a low Reynolds number to fabricate droplets and double emulsions. These products have multiple applications in the design of new ultra-light materials with new properties, agriculture, cosmetics, medicine, and environmental science. For example, using picoliter drops, high-throughput screening on the target of interest helps conduct thousands of experiments per second using minimal reagents. It enables the screening of millions of reactions, such as during the discovery of new drugs, in a short time. The course contains back-of-the-envelope calculations and multiple examples for students and scientists interested in experimental droplet microfluidics.