Salek M Mehdi, Fernandez Vicente, D'souza Glen, Puigmartí-Luis Josep, Stocker Roman, Secchi Eleonora
Institute of Environmental Engineering, Department of Civil, Environmental and Geomatic Engineering, ETH Zürich, Zürich 8093, Switzerland.
Department of Environmental Microbiology, ETH Zürich, Zürich 8093, Switzerland.
Biomicrofluidics. 2021 Jan 22;15(1):014104. doi: 10.1063/5.0038389. eCollection 2021 Jan.
Microfluidics is a relatively novel interdisciplinary research area with broad applications in chemistry, physics, material science, and biology. Despite the rapid growth of the field, students' exposure to microfluidic technologies is still limited and often insufficient to appreciate the advantages over other commonly used technologies. To this end, we designed a five-day course, "Microfluidics for microbial ecology," in which students with very different backgrounds learn the basics of microfluidic technologies and sample a range of applications in microbial ecology. The course was created for Master and Ph.D. students interested in applying microfluidics to their research and, therefore, followed an application-oriented approach. The presentation of critical aspects of fluid flow phenomena at the microscale and an outline of the advantages and constraints of the technology provide students with the background to design and perform microfluidics-based experiments. In order to improve the effectiveness of learning in a class with diverse interests and backgrounds, two active learning exercises were implemented. The first comprised the design of an individualized microfluidics experiment in parallel with the lectures: students were guided to apply each module to their personalized application and discuss it in groups. The second was a group experimental activity, in which students jointly set up, performed, analyzed, and presented a microfluidics-based experiment. Given the multidisciplinary teaching context, the course was able to foster common conceptual ground and promote discussion among students. This application-oriented approach built upon experimental activities and in-class discussion is well suited to promote learning in a technology-related subject such as microfluidics.
微流控技术是一个相对较新的跨学科研究领域,在化学、物理、材料科学和生物学中有着广泛的应用。尽管该领域发展迅速,但学生对微流控技术的接触仍然有限,往往不足以认识到其相较于其他常用技术的优势。为此,我们设计了一门为期五天的课程“微生物生态学中的微流控技术”,让背景差异很大的学生学习微流控技术的基础知识,并了解一系列微生物生态学中的应用。该课程是为有兴趣将微流控技术应用于其研究的硕士和博士研究生开设的,因此采用了以应用为导向的方法。对微尺度流体流动现象关键方面的讲解以及该技术的优势和局限性概述,为学生设计和进行基于微流控的实验提供了背景知识。为了提高在一个兴趣和背景各异的班级中的学习效果,实施了两项主动学习练习。第一项练习包括在授课的同时设计个性化的微流控实验:引导学生将每个模块应用于他们的个性化应用,并分组进行讨论。第二项是小组实验活动,学生们共同设置、进行、分析并展示一个基于微流控的实验。鉴于多学科的教学背景,该课程能够培养共同的概念基础,并促进学生之间的讨论。这种基于实验活动和课堂讨论的以应用为导向的方法非常适合促进在诸如微流控技术等与技术相关学科中的学习。