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学生主导的微流控实验室实践:提高参与度和学习成果。

Student-led microfluidics lab practicals: Improving engagement and learning outcomes.

作者信息

Morton J A S, Bridle H

机构信息

Institute of Photonics and Quantum Sciences, Heriot-Watt University , Riccarton, Edinburgh EH14 4AS, United Kingdom.

Institute of Biological Chemistry, Biophysics and Bioengineering, Heriot-Watt University , Riccarton, Edinburgh EH14 4AS, United Kingdom.

出版信息

Biomicrofluidics. 2016 Jun 8;10(3):034117. doi: 10.1063/1.4953448. eCollection 2016 May.

Abstract

Microfluidics has shown rapid growth in both research and development and offers significant commercialisation potential for biomedical and diagnostic applications in particular. However, there is a lack of awareness of microfluidics outside the field of study, and few dedicated educational programmes are available. While many topics incorporate microfluidics teaching, reported initiatives in the literature have not yet taken a problem based learning (PBL) approach to the delivery of practical sessions. The educational approaches already reported typically focus upon production and testing of pre-determined device designs for specific applications, using a "recipe" style of lab teaching. Here, we report on a newly designed lab section of a microfluidic teaching component utilising problem based learning (PBL) to involve the students in all aspects of design, manufacture, and performance characterisation of microfluidic solutions. Details of the lab design and development are given enabling others to replicate the lab structure described here or use it as a basis for the design of similar PBL microfluidics teaching labs. A key focus of the work has been the evaluation of the student experience, and the results of a survey indicate a high degree of student satisfaction and skills development due to the PBL approach.

摘要

微流控技术在研发方面呈现出快速增长的态势,尤其在生物医学和诊断应用领域具有巨大的商业化潜力。然而,该研究领域之外的人对微流控技术缺乏了解,并且专门的教育项目也很少。虽然许多主题都包含微流控技术教学,但文献中报道的相关举措尚未采用基于问题的学习(PBL)方法来开展实践课程。已报道的教育方法通常侧重于按照特定应用预先设计好的设备进行生产和测试,采用的是“照方抓药”式的实验教学方式。在此,我们报告了微流控技术教学组件中一个新设计的实验环节,该环节利用基于问题的学习(PBL)方法,让学生参与微流控解决方案设计、制造和性能表征的各个方面。文中给出了实验设计与开发的详细信息,以便其他人能够复制这里描述的实验结构,或者将其作为设计类似的基于问题的学习微流控技术教学实验室的基础。这项工作的一个关键重点是对学生体验的评估,一项调查结果表明,基于问题的学习方法使学生满意度很高,并且学生的技能也得到了发展。

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