Research Article
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Natural Filters: The Impact of Urban Plants on Air Quality

Year 2025, Volume: 26 Issue: 2, 269 - 280, 15.10.2025
https://doi.org/10.17474/artvinofd.1627933

Abstract

Plants are among the first solutions considered in the fight against air pollution. As natural and effective agents, they play a vital role. However, success depends on selecting the right species and placing them in suitable climates and locations. When properly chosen, plants can significantly improve air quality and support sustainable urban environments. This study focuses on the concept of "natural filtration," particularly "the role of trees," using the city of Trabzon as the study area. Two sites were selected: one with dense urban vegetation and the other with sparse vegetation. Emission measurements were conducted and analyzed statistically. Results revealed that broad and oval-leaved plants had greater potential to enhance micro air quality. Among all species, Rhododendron cynthia had the most consistent positive effect across all seasons. In spring, the park’s average air quality was 95.48 µg/m³, with R. cynthia recording 357.44 µg/m³. In summer, the average was 106.87 µg/m³, while this species measured 310.37 µg/m³. Autumn showed 124.74 µg/m³ overall, and Rhodendron cynthia had 201.43 µg/m³. In winter, it had the lowest CO emission at 1.03 µg/m³, while the average was 107.96 µg/m³. These findings emphasize the species’ strong potential to improve air quality. Furthermore, 80% of the species with the highest air quality contribution were trees, suggesting they should be prioritized in landscape planning. ANOVA results showed that broad and oval-leaved trees had a significant positive impact, while the difference between deciduous and evergreen species was not significant. In conclusion, urban plants' effectiveness in improving air quality depends on species, leaf shape, and growth form. These findings serve as a guide for environmentally sustainable and informed landscape planning.

References

  • Bekar M, Kaya Şahin E, Güneroğlu N (2016) Trabzon Meydan Parkı bitkisel elemanların estetik ve işlevsel özelliklerinin kış peyzajı açısından incelenmesi. Uluslararası Kış Kentleri Sempozyumu (pp.883-895). Erzurum, Turkey.
  • Cui T, Ye Z, Wang Z, Zhou J, He C, Hong S, Wu Q (2022) Inequalities in PM 2.5 and SO2 exposure health risks in terms of emissions in China, 2013–2017. Atmosphere, 13(9):1422. https://doi.org/10.3390/atmos13091422
  • Escobedo FJ, Nowak DJ (2009) Spatial heterogeneity and air pollution removal by an urban forest. Landscape and Urban Planning, 90(3-4):102-110. https://doi.org/10.1016/j.landurbplan.2008.10.021
  • Grote R, Samson R, Alonso R, Amorim JH, Cariñanos P, Churkina G, Calfapietra C (2016) Functional traits of urban trees: air pollution mitigation potential. Frontiers in Ecology and the Environment, 14(10):543-550. https://doi.org/10.1002/fee.1437
  • Jin MY, Zhang LY, Peng ZR, He HD, Kumar P, Gallagher J (2024) The impact of dynamic traffic and wind conditions on green infrastructure performance to improve local air quality. Science of the Total Environment, 917:170211. https://doi.org/10.1016/j.scitotenv.2024.170211
  • Leghari SK, Zaidi M (2013) Effect of air pollution on the leaf morphology of common plant species of Quetta city. Pak. J. Bot, 45(S1):447-454.
  • Li Y, Wang S, Chen Q (2019) Potential of thirteen urban greening plants to capture particulate matter on leaf surfaces across three levels of ambient atmospheric pollution. International Journal of Environmental Research and Public Health, 16(3):402. https://doi.org/10.3390/ijerph16030402
  • Li Z, Zhang H, Juan YH, Lee YT, Wen CY, Yang AS (2023) Effects of urban tree planting on thermal comfort and air quality in the street canyon in a subtropical climate. Sustainable Cities and Society, 91:104334. https://doi.org/10.1016/j.scs.2022.104334
  • Livesley SJ, McPherson EG, Calfapietra C (2016) The urban forest and ecosystem service: impacts on urban water, heat, and pollution cycles at the tree, street and city scale. Journal of Environmental Quality, 45:119-124. https://doi.org/10.2134/jeq2015.11.0567
  • Leung DYC, Tsui JKY, Chen F, Yip WK, Vrijmoed LLP, Liu CH (2011) Effects of urban vegetation on urban air quality. Landscape Research, 36(2):173-188. https://doi.org/10.1080/01426397.2010.547570
  • Locosselli GM, de Camargo EP, Moreira TCL, Todesco E, de Fátima Andrade M, de André CDS, Buckeridge MS (2019) The role of air pollution and climate on the growth of urban trees. Science of the Total Environment, 666:652-661. https://doi.org/10.1016/j.scitotenv.2019.02.281
  • Nowak DJ, Rowntree RA, McPherson EG, Sisinni SM, Kerkmann E, Stevens JC (1996) Measuring and analyzing urban tree cover. Landscape and Urban Planning, 36:49-57. https://doi.org/10.1016/0169-2046(96)00308-6
  • Nowak DJ (2002) The effects of urban trees on air quality. USDA Forest Service, 96-102.
  • Nowak DJ, Crane DE, Stevens JC (2006) Air pollution removal by urban trees and shrubs in the United States. Urban Forestry & Urban Greening, 4(3-4):115-123. https://doi.org/10.1016/j.ufug.2006.01.007
  • Nowak DJ, Greenfield EJ, Hoehn RE, Lapoint E (2013) Carbon storage and sequestration by trees in urban and community areas of the United States. Environmental Pollution, 178:229-236. https://doi.org/10.1016/j.envpol.2013.03.019
  • Paoletti E, Karnosky DF, Percy KE (2004) Urban trees and air pollution. Forestry Serving Urbanised Societies, 14:129-154.
  • Sancar C, Acar C (2016) Türkiye’de kent peyzajının yeni yüzleri olarak meydanlar: Trabzon-Ortahisar “Atatürk Alanı” dönüşüm projesi. İnönü Üniversitesi Sanat ve Tasarım Dergisi, 6(13).
  • Saxena P, Naik V (2019) Air pollution: sources, impacts, and controls. CAB International, 11-12.
  • Steinparzer M, Schaubmayr J, Godbold DL, Rewald B (2023) Particulate matter accumulation by tree foliage is driven by leaf habit types, urbanization-and pollution levels. Environmental Pollution, 335: 122289. https://doi.org/10.1016/j.envpol.2023.122289
  • Tülek B, Sarı D, Şahin Körmeçli P (2024) Ecosystem services provided by urban woody plants in the context of spatial relations: Çankırı case area. Dendrobiology, 91:100-112. https://doi.org/10.12657/denbio.091.008
  • URL-1 Atatürk Alanı Meydan Parkı Haritası. https://www.haritamap.com/yer/347835/ataturk-alani-meydan-parki.html, Accessed: 06.01.2025.
  • Vashist M, Kumar TV, Singh SK (2024) Assessment of air quality benefits of vegetation in an urban‐industrial region of India by integrating air monitoring with i‐Tree Eco model. CLEAN–Soil, Air, Water, 52(7):2300198. https://doi.org/10.1002/clen.202300198
  • Xiao Q, McPherson EG (2002) Rainfall interception by Santa Monica's municipal urban forest. Urban Ecosystems, 6:291-302. https://doi.org/10.1023/A:1020193327154
  • Xing YF, Xu YH, Shi MH, Lian YX (2016) The impact of PM2.5 on the human respiratory system. Journal of Thoracic Disease, 8(1):E69. https://doi.org/10.3978/j.issn.2072-1439.2016.01.19
  • Yang L, Li C, Tang X (2020) The impact of PM2.5 on the host defense of the respiratory system. Frontiers in Cell and Developmental Biology, 8:91. https://doi.org/10.3389/fcell.2020.00091
  • Yang S, Fang D, Chen B (2019) Human health impact and economic effect for PM2.5 exposure in typical cities. Applied Energy, 249:316-325. https://doi.org/10.1016/j.apenergy.2019.04.113
  • Zhu Y, Chen Q, Li G, She J, Zhu Y, Sun W, Wang Q (2023) Source and health risk apportionment of PM10 based on heavy metals in a city on the edge of the Tengger Desert. Air Quality, Atmosphere & Health, 16(2):391-399. https://doi.org/10.1007/s11869-023-01274-

Doğal Filtreler: Şehir Bitkilerinin Hava Kalitesine Etkisi

Year 2025, Volume: 26 Issue: 2, 269 - 280, 15.10.2025
https://doi.org/10.17474/artvinofd.1627933

Abstract

Bitkiler, hava kirliliğiyle mücadelede ilk akla gelen çözümler arasındadır. Doğal ve etkili unsurlar olarak önemli bir rol oynarlar. Ancak bu süreçte başarı, doğru bitki türlerinin seçilmesi ve uygun iklim koşullarına ve alanlara yerleştirilmesine bağlıdır. Uygun seçimlerle, bitkiler hava kalitesini artırabilir ve sürdürülebilir kentsel çevreler oluşturabilir. Bu çalışma, "doğal filtrasyon" kavramı ve özellikle "ağaçların rolü" üzerine odaklanmakta olup, çalışma alanı olarak Trabzon kenti seçilmiştir. Biri yoğun bitki örtüsüne, diğeri ise az bitki örtüsüne sahip iki alan belirlenmiştir. Bu alanlarda emisyon ölçümleri yapılmış ve istatistiksel olarak analiz edilmiştir. Sonuçlar, geniş ve oval yapraklı bitkilerin mikro hava kalitesini artırmada daha etkili olduğunu göstermiştir. Tüm türler arasında Rhododendron cynthia, dört mevsim boyunca hava kalitesini en fazla iyileştiren tür olmuştur. İlkbaharda parkın ortalama hava kalitesi 95.48 µg/m³ iken, Rhododendron cynthia 357.44 µg/m³ değerine ulaşmıştır. Yazın ortalama 106.87 µg/m³, bu türde ise 310.37 µg/m³ ölçülmüştür. Sonbaharda genel ortalama 124.74 µg/m³ olup, Rhododendron cynthia 201.43 µg/m³ değer göstermiştir. Kışın ise ortalama 107.96 µg/m³ iken, bu tür en düşük CO emisyonunu 1.03 µg/m³ ile göstermiştir. Bulgular, bu türün hava kalitesini artırmadaki güçlü potansiyelini ortaya koymaktadır. Ayrıca, hava kalitesine en fazla katkı sağlayan türlerin %80’inin ağaç formunda olduğu tespit edilmiş ve bu türlerin kentsel peyzaj planlamasında önceliklendirilmesi gerektiği sonucuna varılmıştır. ANOVA testi sonuçlarına göre, geniş ve oval yapraklı ağaçlar hava kalitesine daha fazla katkı sağlarken, yaprağını döken ve herdem yeşil türler arasında anlamlı bir fark bulunmamıştır. Sonuç olarak, kentsel bitkilerin hava kalitesini iyileştirme potansiyeli; tür, yaprak morfolojisi ve büyüme formuna bağlıdır. Bu bulgular, çevresel sürdürülebilirliği destekleyen bilinçli peyzaj planlaması için önemli bir rehber niteliğindedir.

References

  • Bekar M, Kaya Şahin E, Güneroğlu N (2016) Trabzon Meydan Parkı bitkisel elemanların estetik ve işlevsel özelliklerinin kış peyzajı açısından incelenmesi. Uluslararası Kış Kentleri Sempozyumu (pp.883-895). Erzurum, Turkey.
  • Cui T, Ye Z, Wang Z, Zhou J, He C, Hong S, Wu Q (2022) Inequalities in PM 2.5 and SO2 exposure health risks in terms of emissions in China, 2013–2017. Atmosphere, 13(9):1422. https://doi.org/10.3390/atmos13091422
  • Escobedo FJ, Nowak DJ (2009) Spatial heterogeneity and air pollution removal by an urban forest. Landscape and Urban Planning, 90(3-4):102-110. https://doi.org/10.1016/j.landurbplan.2008.10.021
  • Grote R, Samson R, Alonso R, Amorim JH, Cariñanos P, Churkina G, Calfapietra C (2016) Functional traits of urban trees: air pollution mitigation potential. Frontiers in Ecology and the Environment, 14(10):543-550. https://doi.org/10.1002/fee.1437
  • Jin MY, Zhang LY, Peng ZR, He HD, Kumar P, Gallagher J (2024) The impact of dynamic traffic and wind conditions on green infrastructure performance to improve local air quality. Science of the Total Environment, 917:170211. https://doi.org/10.1016/j.scitotenv.2024.170211
  • Leghari SK, Zaidi M (2013) Effect of air pollution on the leaf morphology of common plant species of Quetta city. Pak. J. Bot, 45(S1):447-454.
  • Li Y, Wang S, Chen Q (2019) Potential of thirteen urban greening plants to capture particulate matter on leaf surfaces across three levels of ambient atmospheric pollution. International Journal of Environmental Research and Public Health, 16(3):402. https://doi.org/10.3390/ijerph16030402
  • Li Z, Zhang H, Juan YH, Lee YT, Wen CY, Yang AS (2023) Effects of urban tree planting on thermal comfort and air quality in the street canyon in a subtropical climate. Sustainable Cities and Society, 91:104334. https://doi.org/10.1016/j.scs.2022.104334
  • Livesley SJ, McPherson EG, Calfapietra C (2016) The urban forest and ecosystem service: impacts on urban water, heat, and pollution cycles at the tree, street and city scale. Journal of Environmental Quality, 45:119-124. https://doi.org/10.2134/jeq2015.11.0567
  • Leung DYC, Tsui JKY, Chen F, Yip WK, Vrijmoed LLP, Liu CH (2011) Effects of urban vegetation on urban air quality. Landscape Research, 36(2):173-188. https://doi.org/10.1080/01426397.2010.547570
  • Locosselli GM, de Camargo EP, Moreira TCL, Todesco E, de Fátima Andrade M, de André CDS, Buckeridge MS (2019) The role of air pollution and climate on the growth of urban trees. Science of the Total Environment, 666:652-661. https://doi.org/10.1016/j.scitotenv.2019.02.281
  • Nowak DJ, Rowntree RA, McPherson EG, Sisinni SM, Kerkmann E, Stevens JC (1996) Measuring and analyzing urban tree cover. Landscape and Urban Planning, 36:49-57. https://doi.org/10.1016/0169-2046(96)00308-6
  • Nowak DJ (2002) The effects of urban trees on air quality. USDA Forest Service, 96-102.
  • Nowak DJ, Crane DE, Stevens JC (2006) Air pollution removal by urban trees and shrubs in the United States. Urban Forestry & Urban Greening, 4(3-4):115-123. https://doi.org/10.1016/j.ufug.2006.01.007
  • Nowak DJ, Greenfield EJ, Hoehn RE, Lapoint E (2013) Carbon storage and sequestration by trees in urban and community areas of the United States. Environmental Pollution, 178:229-236. https://doi.org/10.1016/j.envpol.2013.03.019
  • Paoletti E, Karnosky DF, Percy KE (2004) Urban trees and air pollution. Forestry Serving Urbanised Societies, 14:129-154.
  • Sancar C, Acar C (2016) Türkiye’de kent peyzajının yeni yüzleri olarak meydanlar: Trabzon-Ortahisar “Atatürk Alanı” dönüşüm projesi. İnönü Üniversitesi Sanat ve Tasarım Dergisi, 6(13).
  • Saxena P, Naik V (2019) Air pollution: sources, impacts, and controls. CAB International, 11-12.
  • Steinparzer M, Schaubmayr J, Godbold DL, Rewald B (2023) Particulate matter accumulation by tree foliage is driven by leaf habit types, urbanization-and pollution levels. Environmental Pollution, 335: 122289. https://doi.org/10.1016/j.envpol.2023.122289
  • Tülek B, Sarı D, Şahin Körmeçli P (2024) Ecosystem services provided by urban woody plants in the context of spatial relations: Çankırı case area. Dendrobiology, 91:100-112. https://doi.org/10.12657/denbio.091.008
  • URL-1 Atatürk Alanı Meydan Parkı Haritası. https://www.haritamap.com/yer/347835/ataturk-alani-meydan-parki.html, Accessed: 06.01.2025.
  • Vashist M, Kumar TV, Singh SK (2024) Assessment of air quality benefits of vegetation in an urban‐industrial region of India by integrating air monitoring with i‐Tree Eco model. CLEAN–Soil, Air, Water, 52(7):2300198. https://doi.org/10.1002/clen.202300198
  • Xiao Q, McPherson EG (2002) Rainfall interception by Santa Monica's municipal urban forest. Urban Ecosystems, 6:291-302. https://doi.org/10.1023/A:1020193327154
  • Xing YF, Xu YH, Shi MH, Lian YX (2016) The impact of PM2.5 on the human respiratory system. Journal of Thoracic Disease, 8(1):E69. https://doi.org/10.3978/j.issn.2072-1439.2016.01.19
  • Yang L, Li C, Tang X (2020) The impact of PM2.5 on the host defense of the respiratory system. Frontiers in Cell and Developmental Biology, 8:91. https://doi.org/10.3389/fcell.2020.00091
  • Yang S, Fang D, Chen B (2019) Human health impact and economic effect for PM2.5 exposure in typical cities. Applied Energy, 249:316-325. https://doi.org/10.1016/j.apenergy.2019.04.113
  • Zhu Y, Chen Q, Li G, She J, Zhu Y, Sun W, Wang Q (2023) Source and health risk apportionment of PM10 based on heavy metals in a city on the edge of the Tengger Desert. Air Quality, Atmosphere & Health, 16(2):391-399. https://doi.org/10.1007/s11869-023-01274-
There are 27 citations in total.

Details

Primary Language English
Subjects Green Structures and Environments
Journal Section Research Article
Authors

Makbulenur Onur 0000-0003-4511-1284

Demet Ulku Gulpinar Sekban 0000-0002-9614-6009

Publication Date October 15, 2025
Submission Date January 27, 2025
Acceptance Date May 27, 2025
Published in Issue Year 2025 Volume: 26 Issue: 2

Cite

APA Onur, M., & Gulpinar Sekban, D. U. (2025). Natural Filters: The Impact of Urban Plants on Air Quality. Artvin Çoruh Üniversitesi Orman Fakültesi Dergisi, 26(2), 269-280. https://doi.org/10.17474/artvinofd.1627933
AMA Onur M, Gulpinar Sekban DU. Natural Filters: The Impact of Urban Plants on Air Quality. ACUJFF. October 2025;26(2):269-280. doi:10.17474/artvinofd.1627933
Chicago Onur, Makbulenur, and Demet Ulku Gulpinar Sekban. “Natural Filters: The Impact of Urban Plants on Air Quality”. Artvin Çoruh Üniversitesi Orman Fakültesi Dergisi 26, no. 2 (October 2025): 269-80. https://doi.org/10.17474/artvinofd.1627933.
EndNote Onur M, Gulpinar Sekban DU (October 1, 2025) Natural Filters: The Impact of Urban Plants on Air Quality. Artvin Çoruh Üniversitesi Orman Fakültesi Dergisi 26 2 269–280.
IEEE M. Onur and D. U. Gulpinar Sekban, “Natural Filters: The Impact of Urban Plants on Air Quality”, ACUJFF, vol. 26, no. 2, pp. 269–280, 2025, doi: 10.17474/artvinofd.1627933.
ISNAD Onur, Makbulenur - Gulpinar Sekban, Demet Ulku. “Natural Filters: The Impact of Urban Plants on Air Quality”. Artvin Çoruh Üniversitesi Orman Fakültesi Dergisi 26/2 (October2025), 269-280. https://doi.org/10.17474/artvinofd.1627933.
JAMA Onur M, Gulpinar Sekban DU. Natural Filters: The Impact of Urban Plants on Air Quality. ACUJFF. 2025;26:269–280.
MLA Onur, Makbulenur and Demet Ulku Gulpinar Sekban. “Natural Filters: The Impact of Urban Plants on Air Quality”. Artvin Çoruh Üniversitesi Orman Fakültesi Dergisi, vol. 26, no. 2, 2025, pp. 269-80, doi:10.17474/artvinofd.1627933.
Vancouver Onur M, Gulpinar Sekban DU. Natural Filters: The Impact of Urban Plants on Air Quality. ACUJFF. 2025;26(2):269-80.
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