EnderScope: a low-cost 3D printer-based scanning microscope for microplastic detection

Author:

Burke Niamh1ORCID,Müller Gesine2,Saggiomo Vittorio3,Hassett Amy Ruth1ORCID,Mutterer Jérôme4ORCID,Ó Súilleabháin Patrick5,Zakharov Daniel1ORCID,Healy Donal1ORCID,Reynaud Emmanuel G.6ORCID,Pickering Mark17ORCID

Affiliation:

1. School of Medicine, University College Dublin , Dublin, Ireland

2. Multiscale Biology, Johann-Friedrich-Blumenbach Institut für Zoologie und Anthropologie, Georg-August-Universität Göttingen , Gottingen, Niedersachsen, Germany

3. Department of BioNanoTechnology, Wageningen University and Research , Wageningen, Gelderland, The Netherlands

4. Institut de Biologie Moléculaire des Plantes, CNRS & Strasbourg University , Strasbourg, France

5. Department of Psychology and Neuroscience, Boston College , Chestnut Hill, PA, USA

6. School of Biology & Environmental Science, University College Dublin , Dublin, Ireland

7. UCD Centre for Biomedical Engineering, University College Dublin , Dublin, Ireland

Abstract

Low-cost and scalable technologies that allow people to measure microplastics in their local environment could facilitate a greater understanding of the global problem of marine microplastic pollution. A typical way to measure marine microplastic pollution involves imaging filtered seawater samples stained with a fluorescent dye to aid in the detection of microplastics. Although traditional fluorescence microscopy allows these particles to be manually counted and detected, this is a resource- and labour-intensive task. Here, we describe a novel, low-cost microscope for automated scanning and detection of microplastics in filtered seawater samples—the EnderScope. This microscope is based on the mechanics of a low-cost 3D printer (Creality Ender 3). The hotend of the printer is replaced with an optics module, allowing for the reliable and calibrated motion system of the 3D printer to be used for automated scanning over a large area (>20 × 20 cm). The EnderScope is capable of both reflected light and fluorescence imaging. In both configurations, we aimed to make the design as simple and cost-effective as possible, for example, by using low-cost LEDs for illumination and lighting gels as emission filters. We believe this tool is a cost-effective solution for microplastic measurement. This article is part of the Theo Murphy meeting issue 'Open, reproducible hardware for microscopy'.

Funder

UCD School of Medicine

Irish Research Council

Publisher

The Royal Society

Reference27 articles.

1. Open microscopy in the life sciences: quo vadis?

2. Microplastics in the marine environment

3. Microplastics: An introduction to environmental transport processes

4. General Assembly resolution 71/313 . 2017 Work of the statistical commission pertaining to the 2030 agenda for sustainable development. See https://undocs.org/en/A/RES/71/313.

5. Sampling, isolating and identifying microplastics ingested by fish and invertebrates

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Versatile, open‐access opto‐mechanics design for optical microscopes prototyping;Microscopy Research and Technique;2024-08-24

2. Open, reproducible hardware for microscopy;Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences;2024-06-03

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