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Publication Additional Information Download
Publication Type
Journal Article
Authorship
Bo Xiong, Tian-Qi Hong, Herb Schellhorn, Qiyin Fang
Title
Dual-Modality Imaging Microfluidic Cytometer for Onsite Detection of Phytoplankton
Year
2021
Publication Outlet
Photonics 8, 435
DOI
https://doi.org/10.3390/photonics8100435
Citation
Bo Xiong, Tian-Qi Hong, Herb Schellhorn, Qiyin Fang, Dual-Modality Imaging Microfluidic Cytometer for Onsite Detection of Phytoplankton, Photonics 8, 435, 2021.
Abstract
Phytoplankton monitoring is essential for better understanding and mitigation of phytoplankton bloom formation. We present a microfluidic cytometer with two imaging modalities for onsite detection and identification of phytoplankton: a lensless imaging mode for morphological features, and a fluorescence imaging mode for autofluorescence signal of phytoplankton. Both imaging modes are integrated in a microfluidic device with a field of view (FoV) of 3.7 mm × 2.4 mm and a depth of field (DoF) of 0.8 mm. The particles in the water flow channel can be detected and classified with automated image processing algorithms and machine learning models using their morphology and fluorescence features. The performance of the device was demonstrated by measuring Chlamydomonas, Euglena, and non-fluorescent beads in both separate and mixed flow samples. The recall rates for Chlamydomonas and Euglena ware 93.6% and 94.4%. The dual-modality imaging approach enabled observing both morphology and fluorescence features with a large DoF and FoV which contribute to high-throughput analysis. Moreover, this imaging flow cytometer platform is portable, low-cost, and shows potential in the onsite phytoplankton monitoring.
Program Affiliations
GWF: Global Water Futures
Project Affiliations
GWF-Artificial Intelligence for Rapid and Reliable Detection of Cryptosporidium oocysts and Giardia cysts
Publication Stage
Published
Additional Information
Cryptosporidium-oocysts-Giardia-cysts, Refereed Publications
Download Links
https://doi.org/10.3390/photonics8100435
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