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ORIGINAL PAPER
Microscopic analysis of the FFP2 mask used to protect the respiratory system against urban pollutions
 
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Department of Environmental Research and Geoinformation, Jan Kochanowski University, Kielce, Poland
 
 
Submission date: 2024-01-05
 
 
Final revision date: 2024-09-26
 
 
Acceptance date: 2024-10-03
 
 
Publication date: 2024-12-02
 
 
Corresponding author
Mirosław Szwed
Mirosław Szwed Department of of Environmental Research and Geoinformation Jan Kochanowski University Kielce, Poland
 
 
Medical Studies 2024;40(4):357-363
 
KEYWORDS
TOPICS
ABSTRACT
Introduction:
Disposable medical masks commonly used to protect against airborne pathogenic microorganisms have gained popularity during the SARS-CoV-2 pandemic. Until the Comirnaty vaccine was approved by the European Commission on 21 December 2020, the masks had been basically the only protection against the infection. The manufacturer guaranteeing a bacterial filtration efficiency (BFE) of 95% also states that the masks are intended for protection of the respiratory system against pollutants and dust.

Aim of the research:
The aim of the article is to assess the suitability of the mask as a means of protecting the respiratory system against harmful dust during the periods of high PM2.5 air levels. Using the microscopic examination of individual mask layers the quantitative and qualitative composition of the material subjected to aeration in the zone affected by urban pollution was analysed.

Material and methods:
The FFP2 mask commonly available on the market, manufactured in accordance with the EN 149:20001 + A1:2009 standard, was analysed. Observations and sample analysis was conducted by using the Energy Dispersive Spectroscopy (EDS) microanalyser in a Scanning Electron Microscopy System FEI Quanta 250 in the UJK University Environmental Testing Laboratory, Kielce.

Results and conclusions:
The experiment confirmed the effectiveness of protection against pollution provided by the protective mask made of 5-layer polypropylene (PP) non-woven fabric with slim design intended to protect the respiratory system against pathogenic microorganisms transmitted by droplets. The microscopic imaging revealed diverse particles on the surface of individual face mask layers, including multi-element conglomerates; particles of soot, minerals and concentric spherules with predominating share of Fe, Cr, Al and Mg.
REFERENCES (30)
1.
Coronavirus disease (COVID-19): Masks. Available online: https://www.who.int/news-room/... (accessed on 19 June 2024).
 
2.
Ueki H, Furusawa Y, Iwatsuki-Horimoto K, Imai M, Kabata H, Nishimura H, Kawaoka Y. Effectiveness of face masks in preventing airborne transmission of SARS-COV-2. mSphere. 2020; 5: e00637-20.
 
3.
EMA recommends first COVID-19 vaccine for authorisation in the EU|European Medicines Agency. Available online: https://www.ema.europa.eu/en/n... (accessed on 19 June 2024).
 
4.
Polskie Centrum Akredytacji. Available online: https://lmr.ujk.edu.pl/files/z... (accessed on 19 June 2024).
 
5.
Maňkovská B, Godzik B, Badea O, Shparyk Y, Morav- čı K P. Chemical and morphological characteristics of key tree species of the Carpathian Mountains. Environ Pollut. 2004; 130(1): 41-54.
 
6.
Jóźwiak M, Jóźwiak M. Influence of cement industry on accumulation of heavy metals in bioindicators. Ecol Chem Engin S. 2009; 16(3): 323-334.
 
7.
Ocena jakości powietrza – Bieżące dane pomiarowe – GIOŚ. Available online: https://powietrze.gios.gov.pl/... (accessed on 19 June 2024).
 
8.
Bi C, Chen Y, Zhao Z, Li Q, Zhou Q, Ye Z, Ge X. Characteristics, sources and health risks of toxic species (PCDD/Fs, PAHs and heavy metals) in PM2.5 during fall and winter in an industrial area. Chemosphere. 2020; 238: 124620.
 
9.
Zioła N, Słaby K. The content of selected heavy metals and polycyclic aromatic hydrocarbons (PAHs) in PM10 in Urban-Industrial Area. Sustainability. 2020; 12(13): 5284.
 
10.
Bi S, Cao H, Zhang B, Dong H, Gao Y, Zhou X, Jiang Y, Jiang W. PM2.5-bound PAHs near a typical industrial park: determining health risks associated with specific industrial sources. Atm Environ. 2023; 302: 119715.
 
11.
Holme JA, Vondráček J, Machala M, Lagadic-Gossmann D, Vogel CFA, Ferrec EL, Sparfel L, Øvrevik J. Lung cancer associated with combustion particles and fine particulate matter (PM2.5) – The roles of polycyclic aromatic hydrocarbons (PAHs) and the aryl hydrocarbon receptor (AhR). Biochem Pharmacol. 2023; 216: 115801.
 
12.
Sielski J, Kaziród-Wolski K, Jóźwiak MA, Jóźwiak M. The influence of air pollution by PM2.5, PM10 and associated heavy metals on the parameters of out-of-hospital cardiac arrest. Sci Total Environ. 2021; 788: 147541.
 
13.
Vohra K, Vodonos A, Schwartz J, Marais EA, Sulprizio MP, Mickley LJ. Global mortality from outdoor fine particle pollution generated by fossil fuel combustion: results from GEOS-Chem. Environ Res. 2021; 195: 110754.
 
14.
Wang J, Azam W. Natural resource scarcity, fossil fuel energy consumption, and total greenhouse gas emissions in top emitting countries. Geosci Front. 2024; 15(2): 101757.
 
15.
Szwed M, Żukowski W, Kozłowski R. The presence of selected elements in the microscopic image of pine needles as an effect of cement and lime pressure within the region of Białe Zagłębie (Central Europe). Toxics. 2021; 9(1): 15.
 
16.
Szwed M, Żukowski W, Misztal K, Kozłowski R. High-Energy transformations of fossil fuels in the cement industry. Energies. 2023; 16(9): 3634.
 
17.
Heidari M, Darijani T, Alipour V. Heavy metal pollution of road dust in a city and its highly polluted suburb; quantitative source apportionment and source-specific ecological and health risk assessment. Chemosphere. 2021; 273: 129656.
 
18.
Vallack HW, Olawoyin OO, Hicks WK, Kuylenstierna JCI, Emberson LD. The Global Atmospheric Pollution Forum (GAPF) emission inventory preparation tool and its application to Côte d’Ivoire. Atm Pollution Res. 2020; 11(9): 1500-1512.
 
19.
Zhang J, Smith KR, Ma Y, Ye S, Jiang F, Qi W, Liu P, Khalil MAK, Rasmussen RA, Thorneloe SA. Greenhouse gases and other airborne pollutants from household stoves in China: a database for emission factors. Atm Environ. 2000; 34(26): 4537-4549.
 
20.
Khomenko S, Cirach M, Pereira-Barboza E, Mueller N, Barrera-Gómez J, Rojas-Rueda D, de Hoogh K, Hoek G, Nieuwenhuijsen M. Premature mortality due to air pollution in European cities: a health impact assessment. Lancet Planetary Health. 2021; 5(3): 121-134.
 
21.
Reizer M, Juda-Rezler K. Explaining the high PM10 concentrations observed in Polish urban areas. Air Qual Atm Health 2015; 9(5): 517-531.
 
22.
Obwieszczenie Ministra Klimatu i Środowiska z dnia 6 maja 2024 r. w sprawie ogłoszenia jednolitego tekstu rozporządzenia Ministra Klimatu i Środowiska w sprawie dokonywania oceny poziomów substancji w powietrzu (Dz.U. 2024 poz. 870).
 
23.
Shen Y, De Hoogh K, Schmitz O, Clinton N, Tuxen-Bettman K, Brandt J, et al. Europe-wide air pollution modeling from 2000 to 2019 using geographically weighted regression. Environ Int. 2022; 168: 107485.
 
24.
Liao M, Liu H, Wang X, Hu X, Huang Y, Liu X, Brenan K, Mecha J, Nirmalan M, Lu JR. A technical review of face mask wearing in preventing respiratory COVID-19 transmission. Curr Opin Colloid Interface Sci. 2021; 52: 101417.
 
25.
Brooks JT, Butler JC, Redfield RR. Universal masking to prevent SARS-COV-2 transmission – the time is now. JAMA. 2020; 324(7): 635.
 
26.
Ma Q, Shan H, Zhang H, Li G, Yang R, Chen J. Potential utilities of mask-wearing and instant hand hygiene for fighting SARS-CoV-2. J Med Virol. 2020; 92(9): 1567-1571.
 
27.
Bissiri A, Jiao J, Chen Y. A scoping review of the benefits of face mask use on pedestrian and bicyclist exposure to air pollutants. J Transport Health. 2022; 26: 101484.
 
28.
Liu W, Du C, Chu X, Wang Z. “Inverted quarantine” in the face of environmental change: initiative defensive behaviors against air pollution in China. Sustainable Production and Consumption. 2021; 26: 493-503.
 
29.
Szwed M, Kozłowski R, Żukowski W, Mbengue S, Suchánková L, Prokes R. Insights into the chemical characteristics of atmospheric aerosols from urban-industrial and rural sites in south-east of Poland during winter. Quaestiones Geographicae. 2023; 42(3): 89-99.
 
30.
Szwed M, Kozłowski R, Żukowski W. Assessment of air quality in the South-Western part of the Świętokrzyskie Mountains based on selected indicators. Forests. 2020; 11(5): 499.
 
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ISSN:1899-1874
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