Articles | Volume 18, issue 16
https://doi.org/10.5194/amt-18-3983-2025
https://doi.org/10.5194/amt-18-3983-2025
Research article
 | 
26 Aug 2025
Research article |  | 26 Aug 2025

Implementation of real-time source apportionment approaches using the ACSM–Xact–Aethalometer (AXA) setup with SoFi RT: the Athens case study

Manousos I. Manousakas, Olga Zografou, Francesco Canonaco, Evangelia Diapouli, Stefanos Papagiannis, Maria Gini, Vasiliki Vasilatou, Anna Tobler, Stergios Vratolis, Jay G. Slowik, Kaspar R. Daellenbach, André S. H. Prevot, and Konstantinos Eleftheriadis

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Cited articles

Almeida, S. M., Manousakas, M., Diapouli, E., Kertesz, Z., Samek, L., Hristova, E., Sega, K., Alvarez, R. P., Belis, C. A., Eleftheriadis, K., and The IAEA European Region Study GROUP: Ambient particulate matter source apportionment using receptor modelling in European and Central Asia urban areas, Environmental Pollution, 266, 115199, https://doi.org/10.1016/j.envpol.2020.115199, 2020. 
Amato, F., Schaap, M., Denier van der Gon, H. a. C., Pandolfi, M., Alastuey, A., Keuken, M., and Querol, X.: Short-term variability of mineral dust, metals and carbon emission from road dust resuspension, Atmos. Environ., 74, 134–140, https://doi.org/10.1016/j.atmosenv.2013.03.037, 2013. 
Amato, F., Lucarelli, F., Nava, S., Calzolai, G., Karanasiou, A., Colombi, C., Gianelle, V. L., Alves, C., Custódio, D., Eleftheriadis, K., Diapouli, E., Reche, C., Alastuey, A., Minguillón, M. C., Severi, M., Becagli, S., Nunes, T., Cerqueira, M., Pio, C., Manousakas, M., Maggos, T., Vratolis, S., Harrison, R. M., and Querol, X.: Case studies of source apportionment and suggested measures at southern European cities, in: Issues in Environmental Science and Technology, Royal Society of Chemistry, 168–263, ISBN 978-1-78262-491-2, https://doi.org/10.1039/9781782626589-00168, 2016b. 
Argyropoulos, G., Manoli, E., Kouras, A., and Samara, C.: Concentrations and source apportionment of PM10 and associated major and trace elements in the Rhodes Island, Greece, Sci. Total Environ., 432, 12–22, https://doi.org/10.1016/j.scitotenv.2012.05.076, 2012. 
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Short summary
Air pollution from airborne particles is a major health and environmental concern, especially in cities. Understanding the particles' sources is key to addressing this issue, but traditional methods require time-consuming sampling, delaying action. Our study introduces a real-time monitoring system that uses advanced instruments and software to track pollution instantly. This technology allows faster, more precise pollution analysis, helping cities create targeted strategies to improve air quality.
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