A 3D-Printed Smartphone-Based Fluorescence Spectrometer: A Universal Design for Do-It-Yourself Experiments in Education

IF 2.9 3区 教育学 Q2 CHEMISTRY, MULTIDISCIPLINARY Journal of Chemical Education Pub Date : 2024-11-24 DOI:10.1021/acs.jchemed.4c01173
Levente G. Pap*,  and , John A. Stratton, 
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Abstract

Developing portable, cost-effective analytical tools is crucial to expose students to advanced spectrometric systems in the undergraduate curriculum. Numerous Do-It-Yourself (DIY) systems and smartphone-based fluorescence spectrometers have been developed over the last few decades. These systems can be specific to one particular cell phone or require unique configurations that are relatively difficult to implement in classroom or laboratory settings due to a diverse pool of students’ owned cell phones. This work presents the design and validation of a cell-phone-based fluorescence spectrometer (FluoroBox). The system presented herein can be attached to any cell phone and adopted in classroom, online, hybrid, and laboratory settings, thus creating a versatile and universal system for adoption. The 3D-printed unit only requires a student’s smartphone camera, a blue laser, a cuvette, a diffraction grating, and batteries. FloroBox’s performance is validated through the qualitative analysis of edible oils. This study demonstrates the assembly, acquisition, and data processing compared with a conventional benchtop fluorescence spectrometer. By employing easily exchangeable units such as slits, excitation sources, and other elements, the device can detect fluorescence emissions from various fluorophores. This unit provides students with hands-on experience in fluorescence spectroscopy across multiple learning environments. The compact design, ease of use, and integration with mobile technology underline its potential for widespread adoption, particularly in resource-limited settings.

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基于3d打印智能手机的荧光光谱仪:教育中diy实验的通用设计
开发便携式的、具有成本效益的分析工具对于让学生在本科课程中接触到先进的光谱分析系统至关重要。在过去的几十年里,许多DIY系统和基于智能手机的荧光光谱仪已经被开发出来。这些系统可以特定于一种特定的手机,或者需要独特的配置,由于学生拥有不同的手机池,在教室或实验室环境中相对难以实施。这项工作提出了基于手机的荧光光谱仪(FluoroBox)的设计和验证。本文介绍的系统可以连接到任何手机上,并在教室、在线、混合和实验室环境中使用,从而创建了一个通用的通用系统。这种3d打印设备只需要学生的智能手机摄像头、蓝色激光器、试管、衍射光栅和电池。通过对食用油的定性分析,验证了FloroBox的性能。本研究演示了与传统台式荧光光谱仪的组装、采集和数据处理。通过采用易于交换的单元,如狭缝、激发源和其他元件,该装置可以检测来自各种荧光团的荧光发射。本单元为学生提供在多种学习环境中荧光光谱的实践经验。紧凑的设计、易于使用以及与移动技术的集成强调了其广泛采用的潜力,特别是在资源有限的环境中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Chemical Education
Journal of Chemical Education 化学-化学综合
CiteScore
5.60
自引率
50.00%
发文量
465
审稿时长
6.5 months
期刊介绍: The Journal of Chemical Education is the official journal of the Division of Chemical Education of the American Chemical Society, co-published with the American Chemical Society Publications Division. Launched in 1924, the Journal of Chemical Education is the world’s premier chemical education journal. The Journal publishes peer-reviewed articles and related information as a resource to those in the field of chemical education and to those institutions that serve them. JCE typically addresses chemical content, activities, laboratory experiments, instructional methods, and pedagogies. The Journal serves as a means of communication among people across the world who are interested in the teaching and learning of chemistry. This includes instructors of chemistry from middle school through graduate school, professional staff who support these teaching activities, as well as some scientists in commerce, industry, and government.
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