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本文引用的文献

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Interactive programming paradigm for real-time experimentation with remote living matter.实时远程活体实验的交互式编程范例。
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Lab-on-a-Chip: Frontier Science in the Classroom.芯片实验室:课堂中的前沿科学。
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A digital microfluidic system for serological immunoassays in remote settings.一种用于远程环境下血清免疫分析的数字微流控系统。
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3D printed Lego-like modular microfluidic devices based on capillary driving.基于毛细驱动的 3D 打印乐高式模块化微流控器件。
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High-precision modular microfluidics by micromilling of interlocking injection-molded blocks.通过互锁注塑块的微铣削实现高精度模块化微流控。
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Razor-printed sticker microdevices for cell-based applications.基于细胞的应用的 razor 打印不干胶微器件。
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OpenDrop: An Integrated Do-It-Yourself Platform for Personal Use of Biochips.OpenDrop:一个供个人使用生物芯片的集成式自制平台。
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Open-source, community-driven microfluidics with Metafluidics.开源、社区驱动的微流控技术与 Metafluidics 结合。
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9
Emerging Droplet Microfluidics.新兴液滴微流控技术。
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10
Device and programming abstractions for spatiotemporal control of active micro-particle swarms.用于主动微粒子群时空控制的设备和编程抽象。
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“芯片上的学习”:用于正规和非正规科学教育的微流体技术

"Learning on a chip:" Microfluidics for formal and informal science education.

作者信息

Rackus Darius G, Riedel-Kruse Ingmar H, Pamme Nicole

机构信息

Department of Biosystems Science and Engineering, ETH Zurich, Mattenstrasse 26, 4058 Basel, Switzerland.

Department of Chemistry and Biochemistry, University of Hull, Cottingham Road, Hull HU6 7RX, United Kingdom.

出版信息

Biomicrofluidics. 2019 Jul 9;13(4):041501. doi: 10.1063/1.5096030. eCollection 2019 Jul.

DOI:10.1063/1.5096030
PMID:31431815
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6697029/
Abstract

Microfluidics is a technique for the handling of small volumes of liquids on the order of picoliters to nanoliters and has impact for miniaturized biomedical science and fundamental research. Because of its multi- and interdisciplinary nature (i.e., combining the fields of biology, chemistry, physics, and engineering), microfluidics offers much potential for educational applications, both at the university level as well as primary and secondary education. Microfluidics is also an ideal "tool" to enthuse and educate members of the general public about the interdisciplinary aspects of modern sciences, including concepts of science, technology, engineering, and mathematics subjects such as (bio)engineering, chemistry, and biomedical sciences. Here, we provide an overview of approaches that have been taken to make microfluidics accessible for formal and informal learning. We also point out future avenues and desired developments. At the extreme ends, we can distinguish between projects that teach how to build microfluidic devices vs projects that make various microscopic phenomena (e.g., low Reynolds number hydrodynamics, microbiology) accessible to learners and the general public. Microfluidics also enables educators to make experiments low-cost and scalable, and thereby widely accessible. Our goal for this review is to assist academic researchers working in the field of microfluidics and lab-on-a-chip technologies as well as educators with translating research from the laboratory into the lecture hall, teaching laboratory, or public sphere.

摘要

微流控技术是一种用于处理皮升至纳升量级小体积液体的技术,对小型化生物医学科学和基础研究具有重要影响。由于其多学科性质(即结合了生物学、化学、物理和工程学领域),微流控技术在大学教育以及中小学教育中都具有很大的教育应用潜力。微流控技术也是激发和教育普通公众了解现代科学跨学科方面的理想“工具”,这些跨学科方面包括科学、技术、工程以及数学学科(如生物工程、化学和生物医学科学)的概念。在此,我们概述了为使微流控技术便于正式和非正式学习所采取的方法。我们还指出了未来的途径和期望的发展方向。在两端,我们可以区分教如何构建微流控设备的项目与让学习者和普通公众能够了解各种微观现象(如低雷诺数流体动力学、微生物学)的项目。微流控技术还使教育工作者能够以低成本且可扩展的方式进行实验,从而使其广泛可用。我们撰写这篇综述的目的是帮助从事微流控技术和芯片实验室技术领域的学术研究人员以及教育工作者,将实验室研究成果转化为讲堂、教学实验室或公共领域的教学内容。