Skip to main content

2024 | OriginalPaper | Buchkapitel

Micro-Nano-Plastics in Sewage Sludge: Sources, Occurrence, and Potential Environmental Risks

verfasst von : Deachen Angmo, Jaswinder Singh, Sartaj Ahmad Bhat, Babita Thakur, Adarsh Pal Vig

Erschienen in: Management of Micro and Nano-plastics in Soil and Biosolids

Verlag: Springer Nature Switzerland

Aktivieren Sie unsere intelligente Suche, um passende Fachinhalte oder Patente zu finden.

search-config
loading …

Abstract

The presence of microplastics (MPs) as a global contaminant has gained increasing attention, particularly in relation to water pollution. However, research on MPs in sewage sludge remains restricted in comparison. MPs originating from many sources accumulate inside sewage systems, with a significant portion becoming entrapped within the sludge throughout the sewage treatment process. Consequently, the sludge not only serves as a sink for MPs but also as a source of MPs. The utilization of sludge in soil amendments offers the advantage of nutrient provision while potentially introducing a significant microplastic (MP) content into the soil. However, it is important to acknowledge the associated environmental hazards. MPs that have accumulated in the soil can alter its properties and migrate, leading to the contamination of subsurface soils and groundwater. Furthermore, it is important to consider the adsorption of heavy metals and organic pollutants by microplastics (MPs) in sewage sludge, given that these pollutants are often present in significant quantities within the sludge. The coexistence and interplay of microplastics (MPs) and the pollutants they absorb might amplify the environmental hazards, hence enhancing the possibility of their absorption by plants. There is a need for further exploration and investigation of MPs in soil amendments as they can cause long-term risks to the environment. Therefore, this chapter focuses on MPs in sludge, sources of MPs in sewage sludge, and their sampling, separation, and identification methods.

Sie haben noch keine Lizenz? Dann Informieren Sie sich jetzt über unsere Produkte:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literatur
Zurück zum Zitat Alimi, O. S., Farner Budarz, J., Hernandez, L. M., & Tufenkji, N. (2018). Microplastics and nanoplastics in aquatic environments: Aggregation, deposition, and enhanced contaminant transport. Environmental Science & Technology, 52(4), 1704–1724.CrossRef Alimi, O. S., Farner Budarz, J., Hernandez, L. M., & Tufenkji, N. (2018). Microplastics and nanoplastics in aquatic environments: Aggregation, deposition, and enhanced contaminant transport. Environmental Science & Technology, 52(4), 1704–1724.CrossRef
Zurück zum Zitat Alvim, C. B., Mendoza-Roca, J. A., & Bes-Piá, A. (2020). Wastewater treatment plant as microplastics release source – Quantification and identification techniques. Journal of Environmental Management, 255, 109739.CrossRef Alvim, C. B., Mendoza-Roca, J. A., & Bes-Piá, A. (2020). Wastewater treatment plant as microplastics release source – Quantification and identification techniques. Journal of Environmental Management, 255, 109739.CrossRef
Zurück zum Zitat Alvim, C. B., Valiente, S. N., Bes-Piá, M. A., & Mendoza-Roca, J. A. (2022). Methodology for removing microplastics and other anthropogenic microparticles from sludge dewatering system. Journal of Environmental Management, 314, 115010.CrossRef Alvim, C. B., Valiente, S. N., Bes-Piá, M. A., & Mendoza-Roca, J. A. (2022). Methodology for removing microplastics and other anthropogenic microparticles from sludge dewatering system. Journal of Environmental Management, 314, 115010.CrossRef
Zurück zum Zitat Andrady, A. L. (2017). The plastic in microplastics: A review. Marine Pollution Bulletin, 119(1), 12–22.CrossRef Andrady, A. L. (2017). The plastic in microplastics: A review. Marine Pollution Bulletin, 119(1), 12–22.CrossRef
Zurück zum Zitat Angmo, D., Singh, J., Dutta, R., Chowdhary, A. B., Quadar, J., Sharma, M., et al. (2023). Earthworms modulate the toxicity effect of low-density polyethylene on plant development. Journal of Soil Science and Plant Nutrition, 23, 1–13.CrossRef Angmo, D., Singh, J., Dutta, R., Chowdhary, A. B., Quadar, J., Sharma, M., et al. (2023). Earthworms modulate the toxicity effect of low-density polyethylene on plant development. Journal of Soil Science and Plant Nutrition, 23, 1–13.CrossRef
Zurück zum Zitat Bayo, J., Olmos, S., López-Castellanos, J., & Alcolea, A. (2016). Microplastics and microfibers in the sludge of a municipal wastewater treatment plant. International Journal of Sustainable Development and Planning, 11(5), 812–821.CrossRef Bayo, J., Olmos, S., López-Castellanos, J., & Alcolea, A. (2016). Microplastics and microfibers in the sludge of a municipal wastewater treatment plant. International Journal of Sustainable Development and Planning, 11(5), 812–821.CrossRef
Zurück zum Zitat Bläsing, M., & Amelung, W. (2018). Plastics in soil: Analytical methods and possible sources. Science of the Total Environment, 612, 422–435.CrossRef Bläsing, M., & Amelung, W. (2018). Plastics in soil: Analytical methods and possible sources. Science of the Total Environment, 612, 422–435.CrossRef
Zurück zum Zitat Browne, M. A. (2015). Sources and pathways of microplastics to habitats. Marine Anthropogenic Litter, 229–244. Browne, M. A. (2015). Sources and pathways of microplastics to habitats. Marine Anthropogenic Litter, 229–244.
Zurück zum Zitat Browne, M. A., Galloway, T., & Thompson, R. (2007). Microplastic – An emerging contaminant of potential concern? Integrated Environmental Assessment and Management, 3(4), 559–561.CrossRef Browne, M. A., Galloway, T., & Thompson, R. (2007). Microplastic – An emerging contaminant of potential concern? Integrated Environmental Assessment and Management, 3(4), 559–561.CrossRef
Zurück zum Zitat Cao, D., Wang, X., Luo, X., Liu, G., & Zheng, H. (2017). Effects of polystyrene microplastics on the fitness of earthworms in an agricultural soil. In IOP conference series: Earth and environmental science (Vol. 61, p. 12148). IOP Publishing. Cao, D., Wang, X., Luo, X., Liu, G., & Zheng, H. (2017). Effects of polystyrene microplastics on the fitness of earthworms in an agricultural soil. In IOP conference series: Earth and environmental science (Vol. 61, p. 12148). IOP Publishing.
Zurück zum Zitat Carr, S. A., Liu, J., & Tesoro, A. G. (2016). Transport and fate of microplastic particles in wastewater treatment plants. Water Research, 91, 174–182.CrossRef Carr, S. A., Liu, J., & Tesoro, A. G. (2016). Transport and fate of microplastic particles in wastewater treatment plants. Water Research, 91, 174–182.CrossRef
Zurück zum Zitat Chen, G., Feng, Q., & Wang, J. (2020a). Mini-review of microplastics in the atmosphere and their risks to humans. Science of the Total Environment, 703, 135504.CrossRef Chen, G., Feng, Q., & Wang, J. (2020a). Mini-review of microplastics in the atmosphere and their risks to humans. Science of the Total Environment, 703, 135504.CrossRef
Zurück zum Zitat Chen, Y., Leng, Y., Liu, X., & Wang, J. (2020b). Microplastic pollution in vegetable farmlands of suburb Wuhan, Central China. Environmental Pollution, 257, 113449.CrossRef Chen, Y., Leng, Y., Liu, X., & Wang, J. (2020b). Microplastic pollution in vegetable farmlands of suburb Wuhan, Central China. Environmental Pollution, 257, 113449.CrossRef
Zurück zum Zitat Claessens, M., Van Cauwenberghe, L., Vandegehuchte, M. B., & Janssen, C. R. (2013). New techniques for the detection of microplastics in sediments and field collected organisms. Marine Pollution Bulletin, 70(1–2), 227–233.CrossRef Claessens, M., Van Cauwenberghe, L., Vandegehuchte, M. B., & Janssen, C. R. (2013). New techniques for the detection of microplastics in sediments and field collected organisms. Marine Pollution Bulletin, 70(1–2), 227–233.CrossRef
Zurück zum Zitat Cole, M., Lindeque, P., Fileman, E., Halsband, C., Goodhead, R., Moger, J., & Galloway, T. S. (2013). Microplastic ingestion by zooplankton. Environmental Science & Technology, 47(12), 6646–6655.CrossRef Cole, M., Lindeque, P., Fileman, E., Halsband, C., Goodhead, R., Moger, J., & Galloway, T. S. (2013). Microplastic ingestion by zooplankton. Environmental Science & Technology, 47(12), 6646–6655.CrossRef
Zurück zum Zitat Crichton, E. M., Noël, M., Gies, E. A., & Ross, P. S. (2017). A novel, density-independent and FTIR-compatible approach for the rapid extraction of microplastics from aquatic sediments. Analytical Methods, 9(9), 1419–1428.CrossRef Crichton, E. M., Noël, M., Gies, E. A., & Ross, P. S. (2017). A novel, density-independent and FTIR-compatible approach for the rapid extraction of microplastics from aquatic sediments. Analytical Methods, 9(9), 1419–1428.CrossRef
Zurück zum Zitat Crossman, J., Hurley, R. R., Futter, M., & Nizzetto, L. (2020). Transfer and transport of microplastics from biosolids to agricultural soils and the wider environment. Science of the Total Environment, 724, 138334.CrossRef Crossman, J., Hurley, R. R., Futter, M., & Nizzetto, L. (2020). Transfer and transport of microplastics from biosolids to agricultural soils and the wider environment. Science of the Total Environment, 724, 138334.CrossRef
Zurück zum Zitat Cutroneo, L., Reboa, A., Geneselli, I., & Capello, M. (2021). Considerations on salts used for density separation in the extraction of microplastics from sediments. Marine Pollution Bulletin, 166, 112216.CrossRef Cutroneo, L., Reboa, A., Geneselli, I., & Capello, M. (2021). Considerations on salts used for density separation in the extraction of microplastics from sediments. Marine Pollution Bulletin, 166, 112216.CrossRef
Zurück zum Zitat de Souza Machado, A. A., Lau, C. W., Till, J., Kloas, W., Lehmann, A., Becker, R., & Rillig, M. C. (2018a). Impacts of microplastics on the soil biophysical environment. Environmental Science & Technology, 52(17), 9656–9665.CrossRef de Souza Machado, A. A., Lau, C. W., Till, J., Kloas, W., Lehmann, A., Becker, R., & Rillig, M. C. (2018a). Impacts of microplastics on the soil biophysical environment. Environmental Science & Technology, 52(17), 9656–9665.CrossRef
Zurück zum Zitat de Souza Machado, A. A., Kloas, W., Zarfl, C., Hempel, S., & Rillig, M. C. (2018b). Microplastics as an emerging threat to terrestrial ecosystems. Global Change Biology, 24(4), 1405–1416.CrossRef de Souza Machado, A. A., Kloas, W., Zarfl, C., Hempel, S., & Rillig, M. C. (2018b). Microplastics as an emerging threat to terrestrial ecosystems. Global Change Biology, 24(4), 1405–1416.CrossRef
Zurück zum Zitat Dignac, M. F., Houot, S., & Derenne, S. (2006). How the polarity of the separation column may influence the characterization of compost organic matter by pyrolysis-GC/MS. Journal of Analytical and Applied Pyrolysis, 75(2), 128–139.CrossRef Dignac, M. F., Houot, S., & Derenne, S. (2006). How the polarity of the separation column may influence the characterization of compost organic matter by pyrolysis-GC/MS. Journal of Analytical and Applied Pyrolysis, 75(2), 128–139.CrossRef
Zurück zum Zitat Dris, R., Gasperi, J., Rocher, V., Saad, M., Renault, N., & Tassin, B. (2015). Microplastic contamination in an urban area: A case study in greater Paris. Environmental Chemistry, 12(5), 592–599.CrossRef Dris, R., Gasperi, J., Rocher, V., Saad, M., Renault, N., & Tassin, B. (2015). Microplastic contamination in an urban area: A case study in greater Paris. Environmental Chemistry, 12(5), 592–599.CrossRef
Zurück zum Zitat El Hayany, B., El Fels, L., Quénéa, K., Dignac, M. F., Rumpel, C., Gupta, V. K., & Hafidi, M. (2020). Microplastics from lagooning sludge to composts as revealed by fluorescent staining-image analysis, Raman spectroscopy and pyrolysis-GC/MS. Journal of Environmental Management, 275, 111249.CrossRef El Hayany, B., El Fels, L., Quénéa, K., Dignac, M. F., Rumpel, C., Gupta, V. K., & Hafidi, M. (2020). Microplastics from lagooning sludge to composts as revealed by fluorescent staining-image analysis, Raman spectroscopy and pyrolysis-GC/MS. Journal of Environmental Management, 275, 111249.CrossRef
Zurück zum Zitat El Hayany, B., Rumpel, C., Hafidi, M., & El Fels, L. (2022). Occurrence, analysis of microplastics in sewage sludge and their fate during composting: A literature review. Journal of Environmental Management, 317, 115364.CrossRef El Hayany, B., Rumpel, C., Hafidi, M., & El Fels, L. (2022). Occurrence, analysis of microplastics in sewage sludge and their fate during composting: A literature review. Journal of Environmental Management, 317, 115364.CrossRef
Zurück zum Zitat Elert, A. M., Becker, R., Duemichen, E., Eisentraut, P., Falkenhagen, J., Sturm, H., & Braun, U. (2017). Comparison of different methods for MP detection: What can we learn from them, and why asking the right question before measurements matters? Environmental Pollution, 231, 1256–1264.CrossRef Elert, A. M., Becker, R., Duemichen, E., Eisentraut, P., Falkenhagen, J., Sturm, H., & Braun, U. (2017). Comparison of different methods for MP detection: What can we learn from them, and why asking the right question before measurements matters? Environmental Pollution, 231, 1256–1264.CrossRef
Zurück zum Zitat Eriksen, M., Mason, S., Wilson, S., Box, C., Zellers, A., Edwards, W., et al. (2013). Microplastic pollution in the surface waters of the Laurentian Great Lakes. Marine Pollution Bulletin, 77(1–2), 177–182.CrossRef Eriksen, M., Mason, S., Wilson, S., Box, C., Zellers, A., Edwards, W., et al. (2013). Microplastic pollution in the surface waters of the Laurentian Great Lakes. Marine Pollution Bulletin, 77(1–2), 177–182.CrossRef
Zurück zum Zitat Fendall, L. S., & Sewell, M. A. (2009). Contributing to marine pollution by washing your face: Microplastics in facial cleansers. Marine Pollution Bulletin, 58(8), 1225–1228.CrossRef Fendall, L. S., & Sewell, M. A. (2009). Contributing to marine pollution by washing your face: Microplastics in facial cleansers. Marine Pollution Bulletin, 58(8), 1225–1228.CrossRef
Zurück zum Zitat Franco, A. A., Martín-García, A. P., Egea-Corbacho, A., Arellano, J. M., Albendín, G., Rodríguez-Barroso, R., et al. (2023). Assessment and accumulation of microplastics in sewage sludge at wastewater treatment plants located in Cádiz, Spain. Environmental Pollution, 317, 120689.CrossRef Franco, A. A., Martín-García, A. P., Egea-Corbacho, A., Arellano, J. M., Albendín, G., Rodríguez-Barroso, R., et al. (2023). Assessment and accumulation of microplastics in sewage sludge at wastewater treatment plants located in Cádiz, Spain. Environmental Pollution, 317, 120689.CrossRef
Zurück zum Zitat Freeman, S., Booth, A. M., Sabbah, I., Tiller, R., Dierking, J., Klun, K., et al. (2020). Between source and sea: The role of wastewater treatment in reducing marine microplastics. Journal of Environmental Management, 266, 110642.CrossRef Freeman, S., Booth, A. M., Sabbah, I., Tiller, R., Dierking, J., Klun, K., et al. (2020). Between source and sea: The role of wastewater treatment in reducing marine microplastics. Journal of Environmental Management, 266, 110642.CrossRef
Zurück zum Zitat Gatidou, G., Arvaniti, O. S., & Stasinakis, A. S. (2019). Review on the occurrence and fate of microplastics in sewage treatment plants. Journal of Hazardous Materials, 367, 504–512.CrossRef Gatidou, G., Arvaniti, O. S., & Stasinakis, A. S. (2019). Review on the occurrence and fate of microplastics in sewage treatment plants. Journal of Hazardous Materials, 367, 504–512.CrossRef
Zurück zum Zitat Gies, E. A., LeNoble, J. L., Noël, M., Etemadifar, A., Bishay, F., Hall, E. R., & Ross, P. S. (2018). Retention of microplastics in a major secondary wastewater treatment plant in Vancouver, Canada. Marine Pollution Bulletin, 133, 553–561.CrossRef Gies, E. A., LeNoble, J. L., Noël, M., Etemadifar, A., Bishay, F., Hall, E. R., & Ross, P. S. (2018). Retention of microplastics in a major secondary wastewater treatment plant in Vancouver, Canada. Marine Pollution Bulletin, 133, 553–561.CrossRef
Zurück zum Zitat Hale, R. C., Seeley, M. E., La Guardia, M. J., Mai, L., & Zeng, E. Y. (2020). A global perspective on microplastics. Journal of Geophysical Research: Oceans, 125(1), e2018JC014719.CrossRef Hale, R. C., Seeley, M. E., La Guardia, M. J., Mai, L., & Zeng, E. Y. (2020). A global perspective on microplastics. Journal of Geophysical Research: Oceans, 125(1), e2018JC014719.CrossRef
Zurück zum Zitat Han, X., Lu, X., & Vogt, R. D. (2019). An optimized density-based approach for extracting microplastics from soil and sediment samples. Environmental Pollution, 254, 113009.CrossRef Han, X., Lu, X., & Vogt, R. D. (2019). An optimized density-based approach for extracting microplastics from soil and sediment samples. Environmental Pollution, 254, 113009.CrossRef
Zurück zum Zitat Hatinoğlu, M. D., & Sanin, F. D. (2021). Sewage sludge as a source of microplastics in the environment: A review of occurrence and fate during sludge treatment. Journal of Environmental Management, 295, 113028.CrossRef Hatinoğlu, M. D., & Sanin, F. D. (2021). Sewage sludge as a source of microplastics in the environment: A review of occurrence and fate during sludge treatment. Journal of Environmental Management, 295, 113028.CrossRef
Zurück zum Zitat He, D., Zhang, X., & Hu, J. (2021). Methods for separating microplastics from complex solid matrices: Comparative analysis. Journal of Hazardous Materials, 409, 124640.CrossRef He, D., Zhang, X., & Hu, J. (2021). Methods for separating microplastics from complex solid matrices: Comparative analysis. Journal of Hazardous Materials, 409, 124640.CrossRef
Zurück zum Zitat Hidalgo-Ruz, V., Gutow, L., Thompson, R. C., & Thiel, M. (2012). Microplastics in the marine environment: A review of the methods used for identification and quantification. Environmental Science & Technology, 46(6), 3060–3075.CrossRef Hidalgo-Ruz, V., Gutow, L., Thompson, R. C., & Thiel, M. (2012). Microplastics in the marine environment: A review of the methods used for identification and quantification. Environmental Science & Technology, 46(6), 3060–3075.CrossRef
Zurück zum Zitat Hongprasith, N., Kittimethawong, C., Lertluksanaporn, R., Eamchotchawalit, T., Kittipongvises, S., & Lohwacharin, J. (2020). IR microspectroscopic identification of microplastics in municipal wastewater treatment plants. Environmental Science and Pollution Research, 27, 18557–18564.CrossRef Hongprasith, N., Kittimethawong, C., Lertluksanaporn, R., Eamchotchawalit, T., Kittipongvises, S., & Lohwacharin, J. (2020). IR microspectroscopic identification of microplastics in municipal wastewater treatment plants. Environmental Science and Pollution Research, 27, 18557–18564.CrossRef
Zurück zum Zitat Horton, A. A., Cross, R. K., Read, D. S., Jürgens, M. D., Ball, H. L., Svendsen, C., et al. (2021). Semi-automated analysis of microplastics in complex wastewater samples. Environmental Pollution, 268, 115841.CrossRef Horton, A. A., Cross, R. K., Read, D. S., Jürgens, M. D., Ball, H. L., Svendsen, C., et al. (2021). Semi-automated analysis of microplastics in complex wastewater samples. Environmental Pollution, 268, 115841.CrossRef
Zurück zum Zitat He, D., Luo, Y., Lu, S., Liu, M., Song, Y., & Lei, L. (2018). Microplastics in soils: Analytical methods, pollution characteristics and ecological risks. TrAC Trends in Analytical Chemistry, 109, 163–172. He, D., Luo, Y., Lu, S., Liu, M., Song, Y., & Lei, L. (2018). Microplastics in soils: Analytical methods, pollution characteristics and ecological risks. TrAC Trends in Analytical Chemistry, 109, 163–172.
Zurück zum Zitat Jagadeesh, N., & Sundaram, B. (2021). A review of microplastics in wastewater, their persistence, interaction, and fate. Journal of Environmental Chemical Engineering, 9(6), 106846.CrossRef Jagadeesh, N., & Sundaram, B. (2021). A review of microplastics in wastewater, their persistence, interaction, and fate. Journal of Environmental Chemical Engineering, 9(6), 106846.CrossRef
Zurück zum Zitat Jiang, X., Chang, Y., Zhang, T., Qiao, Y., Klobučar, G., & Li, M. (2020). Toxicological effects of polystyrene microplastics on earthworm (Eisenia fetida). Environmental Pollution, 259, 113896.CrossRef Jiang, X., Chang, Y., Zhang, T., Qiao, Y., Klobučar, G., & Li, M. (2020). Toxicological effects of polystyrene microplastics on earthworm (Eisenia fetida). Environmental Pollution, 259, 113896.CrossRef
Zurück zum Zitat Käppler, A., Fischer, M., Scholz-Böttcher, B. M., Oberbeckmann, S., Labrenz, M., Fischer, D., et al. (2018). Comparison of μ-ATR-FTIR spectroscopy and py-GCMS as identification tools for microplastic particles and fibers isolated from river sediments. Analytical and Bioanalytical Chemistry, 410, 5313–5327.CrossRef Käppler, A., Fischer, M., Scholz-Böttcher, B. M., Oberbeckmann, S., Labrenz, M., Fischer, D., et al. (2018). Comparison of μ-ATR-FTIR spectroscopy and py-GCMS as identification tools for microplastic particles and fibers isolated from river sediments. Analytical and Bioanalytical Chemistry, 410, 5313–5327.CrossRef
Zurück zum Zitat Karlsson, T. M., Vethaak, A. D., Almroth, B. C., Ariese, F., van Velzen, M., Hassellöv, M., & Leslie, H. A. (2017). Screening for microplastics in sediment, water, marine invertebrates and fish: Method development and microplastic accumulation. Marine Pollution Bulletin, 122(1–2), 403–408.CrossRef Karlsson, T. M., Vethaak, A. D., Almroth, B. C., Ariese, F., van Velzen, M., Hassellöv, M., & Leslie, H. A. (2017). Screening for microplastics in sediment, water, marine invertebrates and fish: Method development and microplastic accumulation. Marine Pollution Bulletin, 122(1–2), 403–408.CrossRef
Zurück zum Zitat Koyuncuoğlu, P., & Erden, G. (2021). Sampling, pre-treatment, and identification methods of microplastics in sewage sludge and their effects in agricultural soils: A review. Environmental Monitoring and Assessment, 193(4), 1–28.CrossRef Koyuncuoğlu, P., & Erden, G. (2021). Sampling, pre-treatment, and identification methods of microplastics in sewage sludge and their effects in agricultural soils: A review. Environmental Monitoring and Assessment, 193(4), 1–28.CrossRef
Zurück zum Zitat Lares, M., Ncibi, M. C., Sillanpää, M., & Sillanpää, M. (2018). Occurrence, identification and removal of microplastic particles and fibers in conventional activated sludge process and advanced MBR technology. Water Research, 133, 236–246.CrossRef Lares, M., Ncibi, M. C., Sillanpää, M., & Sillanpää, M. (2018). Occurrence, identification and removal of microplastic particles and fibers in conventional activated sludge process and advanced MBR technology. Water Research, 133, 236–246.CrossRef
Zurück zum Zitat Lebreton, L., & Andrady, A. (2019). Future scenarios of global plastic waste generation and disposal. Palgrave Communications, 5(1), 1–11.CrossRef Lebreton, L., & Andrady, A. (2019). Future scenarios of global plastic waste generation and disposal. Palgrave Communications, 5(1), 1–11.CrossRef
Zurück zum Zitat Lechthaler, S., Hildebrandt, L., Stauch, G., & Schüttrumpf, H. (2020). Canola oil extraction in conjunction with a plastic free separation unit optimises microplastics monitoring in water and sediment. Analytical Methods, 12(42), 5128–5139.CrossRef Lechthaler, S., Hildebrandt, L., Stauch, G., & Schüttrumpf, H. (2020). Canola oil extraction in conjunction with a plastic free separation unit optimises microplastics monitoring in water and sediment. Analytical Methods, 12(42), 5128–5139.CrossRef
Zurück zum Zitat Lee, H., & Kim, Y. (2018). Treatment characteristics of microplastics at biological sewage treatment facilities in Korea. Marine Pollution Bulletin, 137, 1–8.CrossRef Lee, H., & Kim, Y. (2018). Treatment characteristics of microplastics at biological sewage treatment facilities in Korea. Marine Pollution Bulletin, 137, 1–8.CrossRef
Zurück zum Zitat Leslie, H. A., Brandsma, S. H., Van Velzen, M. J. M., & Vethaak, A. D. (2017). Microplastics en route: Field measurements in the Dutch river delta and Amsterdam canals, wastewater treatment plants, North Sea sediments and biota. Environment International, 101, 133–142.CrossRef Leslie, H. A., Brandsma, S. H., Van Velzen, M. J. M., & Vethaak, A. D. (2017). Microplastics en route: Field measurements in the Dutch river delta and Amsterdam canals, wastewater treatment plants, North Sea sediments and biota. Environment International, 101, 133–142.CrossRef
Zurück zum Zitat Li, X., Chen, L., Mei, Q., Dong, B., Dai, X., Ding, G., & Zeng, E. Y. (2018). Microplastics in sewage sludge from the wastewater treatment plants in China. Water Research, 142, 75–85.CrossRef Li, X., Chen, L., Mei, Q., Dong, B., Dai, X., Ding, G., & Zeng, E. Y. (2018). Microplastics in sewage sludge from the wastewater treatment plants in China. Water Research, 142, 75–85.CrossRef
Zurück zum Zitat Li, Q., Wu, J., Zhao, X., Gu, X., & Ji, R. (2019). Separation and identification of microplastics from soil and sewage sludge. Environmental Pollution, 254, 113076.CrossRef Li, Q., Wu, J., Zhao, X., Gu, X., & Ji, R. (2019). Separation and identification of microplastics from soil and sewage sludge. Environmental Pollution, 254, 113076.CrossRef
Zurück zum Zitat Li, X., Chen, L., Ji, Y., Li, M., Dong, B., Qian, G., et al. (2020). Effects of chemical pretreatments on microplastic extraction in sewage sludge and their physicochemical characteristics. Water Research, 171, 115379.CrossRef Li, X., Chen, L., Ji, Y., Li, M., Dong, B., Qian, G., et al. (2020). Effects of chemical pretreatments on microplastic extraction in sewage sludge and their physicochemical characteristics. Water Research, 171, 115379.CrossRef
Zurück zum Zitat Li, X., Wang, X., Chen, L., Huang, X., Pan, F., Liu, L., et al. (2022). Changes in physicochemical and leachate characteristics of microplastics during hydrothermal treatment of sewage sludge. Water Research, 222, 118876.CrossRef Li, X., Wang, X., Chen, L., Huang, X., Pan, F., Liu, L., et al. (2022). Changes in physicochemical and leachate characteristics of microplastics during hydrothermal treatment of sewage sludge. Water Research, 222, 118876.CrossRef
Zurück zum Zitat Liao, Y. C., Nazygul, J., Li, M., Wang, X. L., & Jiang, L. J. (2019). Effects of microplastics on the growth, physiology, and biochemical characteristics of wheat (Triticum aestivum). Huan jing ke xue= Huanjing kexue, 40(10), 4661–4667. Liao, Y. C., Nazygul, J., Li, M., Wang, X. L., & Jiang, L. J. (2019). Effects of microplastics on the growth, physiology, and biochemical characteristics of wheat (Triticum aestivum). Huan jing ke xue= Huanjing kexue, 40(10), 4661–4667.
Zurück zum Zitat Liebezeit, G., & Liebezeit, E. (2014). Synthetic particles as contaminants in German beers. Food Additives & Contaminants: Part A, 31(9), 1574–1578.CrossRef Liebezeit, G., & Liebezeit, E. (2014). Synthetic particles as contaminants in German beers. Food Additives & Contaminants: Part A, 31(9), 1574–1578.CrossRef
Zurück zum Zitat Liu, X., Yuan, W., Di, M., Li, Z., & Wang, J. (2019). Transfer and fate of microplastics during the conventional activated sludge process in one wastewater treatment plant of China. Chemical Engineering Journal, 362, 176–182.CrossRef Liu, X., Yuan, W., Di, M., Li, Z., & Wang, J. (2019). Transfer and fate of microplastics during the conventional activated sludge process in one wastewater treatment plant of China. Chemical Engineering Journal, 362, 176–182.CrossRef
Zurück zum Zitat Lusher, A. L., Munno, K., Hermabessiere, L., & Carr, S. (2020). Isolation and extraction of microplastics from environmental samples: an evaluation of practical approaches and recommendations for further harmonization. Applied Spectroscopy, 74(9), 1049–1065. Lusher, A. L., Munno, K., Hermabessiere, L., & Carr, S. (2020). Isolation and extraction of microplastics from environmental samples: an evaluation of practical approaches and recommendations for further harmonization. Applied Spectroscopy, 74(9), 1049–1065.
Zurück zum Zitat Lv, X., Dong, Q., Zuo, Z., Liu, Y., Huang, X., & Wu, W. M. (2019). Microplastics in a municipal wastewater treatment plant: Fate, dynamic distribution, removal efficiencies, and control strategies. Journal of Cleaner Production, 225, 579–586. Lv, X., Dong, Q., Zuo, Z., Liu, Y., Huang, X., & Wu, W. M. (2019). Microplastics in a municipal wastewater treatment plant: Fate, dynamic distribution, removal efficiencies, and control strategies. Journal of Cleaner Production, 225, 579–586.
Zurück zum Zitat Möller, J. N., Löder, M. G., & Laforsch, C. (2020). Finding microplastics in soils: A review of analytical methods. Environmental Science & Technology, 54(4), 2078–2090.CrossRef Möller, J. N., Löder, M. G., & Laforsch, C. (2020). Finding microplastics in soils: A review of analytical methods. Environmental Science & Technology, 54(4), 2078–2090.CrossRef
Zurück zum Zitat Ma, J., Aqeel, M., Khalid, N., Nazir, A., Alzuaibr, F. M., Al-Mushhin, A. A., et al. (2022). Effects of microplastics on growth and metabolism of rice (Oryza sativa L.). Chemosphere, 307, 135749.CrossRef Ma, J., Aqeel, M., Khalid, N., Nazir, A., Alzuaibr, F. M., Al-Mushhin, A. A., et al. (2022). Effects of microplastics on growth and metabolism of rice (Oryza sativa L.). Chemosphere, 307, 135749.CrossRef
Zurück zum Zitat Maes, T., Jessop, R., Wellner, N., Haupt, K., & Mayes, A. G. (2017). A rapid-screening approach to detect and quantify microplastics based on fluorescent tagging with Nile Red. Scientific Reports, 7(1), 1–10.CrossRef Maes, T., Jessop, R., Wellner, N., Haupt, K., & Mayes, A. G. (2017). A rapid-screening approach to detect and quantify microplastics based on fluorescent tagging with Nile Red. Scientific Reports, 7(1), 1–10.CrossRef
Zurück zum Zitat Magnusson, K., & Norén, F. (2014). Screening of microplastic particles in and down-stream a wastewater treatment plant. Swedish Environmental Research Institute, 55, 1–22. Magnusson, K., & Norén, F. (2014). Screening of microplastic particles in and down-stream a wastewater treatment plant. Swedish Environmental Research Institute, 55, 1–22.
Zurück zum Zitat Mahon, A. M., O’Connell, B., Healy, M. G., O’Connor, I., Officer, R., Nash, R., & Morrison, L. (2017). Microplastics in sewage sludge: Effects of treatment. Environmental Science & Technology, 51(2), 810–818.CrossRef Mahon, A. M., O’Connell, B., Healy, M. G., O’Connor, I., Officer, R., Nash, R., & Morrison, L. (2017). Microplastics in sewage sludge: Effects of treatment. Environmental Science & Technology, 51(2), 810–818.CrossRef
Zurück zum Zitat Mallow, O., Spacek, S., Schwarzböck, T., Fellner, J., & Rechberger, H. (2020). A new thermoanalytical method for the quantification of microplastics in industrial wastewater. Environmental Pollution, 259, 113862.CrossRef Mallow, O., Spacek, S., Schwarzböck, T., Fellner, J., & Rechberger, H. (2020). A new thermoanalytical method for the quantification of microplastics in industrial wastewater. Environmental Pollution, 259, 113862.CrossRef
Zurück zum Zitat Mani, T., Frehland, S., Kalberer, A., & Burkhardt-Holm, P. (2019). Using castor oil to separate microplastics from four different environmental matrices. Analytical Methods, 11(13), 1788–1794.CrossRef Mani, T., Frehland, S., Kalberer, A., & Burkhardt-Holm, P. (2019). Using castor oil to separate microplastics from four different environmental matrices. Analytical Methods, 11(13), 1788–1794.CrossRef
Zurück zum Zitat Mason, S. A., Garneau, D., Sutton, R., Chu, Y., Ehmann, K., Barnes, J., et al. (2016). Microplastic pollution is widely detected in US municipal wastewater treatment plant effluent. Environmental Pollution, 218, 1045–1054.CrossRef Mason, S. A., Garneau, D., Sutton, R., Chu, Y., Ehmann, K., Barnes, J., et al. (2016). Microplastic pollution is widely detected in US municipal wastewater treatment plant effluent. Environmental Pollution, 218, 1045–1054.CrossRef
Zurück zum Zitat Menéndez-Manjón, A., Martínez-Díez, R., Sol, D., Laca, A., Laca, A., Rancaño, A., & Díaz, M. (2022). Long-term occurrence and fate of microplastics in WWTPs: A case study in Southwest Europe. Applied Sciences, 12(4), 2133.CrossRef Menéndez-Manjón, A., Martínez-Díez, R., Sol, D., Laca, A., Laca, A., Rancaño, A., & Díaz, M. (2022). Long-term occurrence and fate of microplastics in WWTPs: A case study in Southwest Europe. Applied Sciences, 12(4), 2133.CrossRef
Zurück zum Zitat Michielssen, M. R., Michielssen, E. R., Ni, J., & Duhaime, M. B. (2016). Fate of microplastics and other small anthropogenic litter (SAL) in wastewater treatment plants depends on unit processes employed. Environmental Science: Water Research & Technology, 2(6), 1064–1073. Michielssen, M. R., Michielssen, E. R., Ni, J., & Duhaime, M. B. (2016). Fate of microplastics and other small anthropogenic litter (SAL) in wastewater treatment plants depends on unit processes employed. Environmental Science: Water Research & Technology, 2(6), 1064–1073.
Zurück zum Zitat Mintenig, S. M., Int-Veen, I., Löder, M. G., Primpke, S., & Gerdts, G. (2017). Identification of microplastic in effluents of waste water treatment plants using focal plane array-based micro-Fourier-transform infrared imaging. Water Research, 108, 365–337.CrossRef Mintenig, S. M., Int-Veen, I., Löder, M. G., Primpke, S., & Gerdts, G. (2017). Identification of microplastic in effluents of waste water treatment plants using focal plane array-based micro-Fourier-transform infrared imaging. Water Research, 108, 365–337.CrossRef
Zurück zum Zitat Murphy, F., Ewins, C., Carbonnier, F., & Quinn, B. (2016). Wastewater treatment works (WwTW) as a source of microplastics in the aquatic environment. Environmental Science & Technology, 50(11), 5800–5808.CrossRef Murphy, F., Ewins, C., Carbonnier, F., & Quinn, B. (2016). Wastewater treatment works (WwTW) as a source of microplastics in the aquatic environment. Environmental Science & Technology, 50(11), 5800–5808.CrossRef
Zurück zum Zitat Ngo, P. L., Pramanik, B. K., Shah, K., & Roychand, R. (2019). Pathway, classification and removal efficiency of microplastics in wastewater treatment plants. Environmental Pollution, 255, 113326.CrossRef Ngo, P. L., Pramanik, B. K., Shah, K., & Roychand, R. (2019). Pathway, classification and removal efficiency of microplastics in wastewater treatment plants. Environmental Pollution, 255, 113326.CrossRef
Zurück zum Zitat Nizzetto, L., Futter, M., & Langaas, S. (2016). Are agricultural soils dumps for microplastics of urban origin? Environmental Science & Technology, 50, 10777.CrossRef Nizzetto, L., Futter, M., & Langaas, S. (2016). Are agricultural soils dumps for microplastics of urban origin? Environmental Science & Technology, 50, 10777.CrossRef
Zurück zum Zitat Okoffo, E. D., O’Brien, S., O’Brien, J. W., Tscharke, B. J., & Thomas, K. V. (2019). Wastewater treatment plants as a source of plastics in the environment: A review of occurrence, methods for identification, quantification and fate. Environmental Science: Water Research & Technology, 5(11), 1908–1931. Okoffo, E. D., O’Brien, S., O’Brien, J. W., Tscharke, B. J., & Thomas, K. V. (2019). Wastewater treatment plants as a source of plastics in the environment: A review of occurrence, methods for identification, quantification and fate. Environmental Science: Water Research & Technology, 5(11), 1908–1931.
Zurück zum Zitat Pittura, L., Foglia, A., Akyol, Ç., Cipolletta, G., Benedetti, M., Regoli, F., et al. (2021). Microplastics in real wastewater treatment schemes: Comparative assessment and relevant inhibition effects on anaerobic processes. Chemosphere, 262, 128415.CrossRef Pittura, L., Foglia, A., Akyol, Ç., Cipolletta, G., Benedetti, M., Regoli, F., et al. (2021). Microplastics in real wastewater treatment schemes: Comparative assessment and relevant inhibition effects on anaerobic processes. Chemosphere, 262, 128415.CrossRef
Zurück zum Zitat Prata, J. C., da Costa, J. P., Duarte, A. C., & Rocha-Santos, T. (2019). Methods for sampling and detection of microplastics in water and sediment: A critical review. TrAC Trends in Analytical Chemistry, 110, 150–159.CrossRef Prata, J. C., da Costa, J. P., Duarte, A. C., & Rocha-Santos, T. (2019). Methods for sampling and detection of microplastics in water and sediment: A critical review. TrAC Trends in Analytical Chemistry, 110, 150–159.CrossRef
Zurück zum Zitat Priyanka, M., & Saravanakumar, M. P. (2019). Preliminary examination on isolation of microplastics (MPs) in sewage sludge from the local wastewater treatment plant. International Journal of Engineering and Advanced Technology, 9(1), 7514–7516.CrossRef Priyanka, M., & Saravanakumar, M. P. (2019). Preliminary examination on isolation of microplastics (MPs) in sewage sludge from the local wastewater treatment plant. International Journal of Engineering and Advanced Technology, 9(1), 7514–7516.CrossRef
Zurück zum Zitat Priyanka, G. M., & Udayashankara, T. H. (2018). Methodology for sampling, purification, extraction and identification of microplastic – A review. International Journal of Science and Research, 7(1), 1006–1009. Priyanka, G. M., & Udayashankara, T. H. (2018). Methodology for sampling, purification, extraction and identification of microplastic – A review. International Journal of Science and Research, 7(1), 1006–1009.
Zurück zum Zitat Ragoobur, D., Huerta-Lwanga, E., & Somaroo, G. D. (2021). Microplastics in agricultural soils, wastewater effluents and sewage sludge in Mauritius. Science of the Total Environment, 798, 149326.CrossRef Ragoobur, D., Huerta-Lwanga, E., & Somaroo, G. D. (2021). Microplastics in agricultural soils, wastewater effluents and sewage sludge in Mauritius. Science of the Total Environment, 798, 149326.CrossRef
Zurück zum Zitat Raju, S., Carbery, M., Kuttykattil, A., Senthirajah, K., Lundmark, A., Rogers, Z., et al. (2020). Improved methodology to determine the fate and transport of microplastics in a secondary wastewater treatment plant. Water Research, 173, 115549.CrossRef Raju, S., Carbery, M., Kuttykattil, A., Senthirajah, K., Lundmark, A., Rogers, Z., et al. (2020). Improved methodology to determine the fate and transport of microplastics in a secondary wastewater treatment plant. Water Research, 173, 115549.CrossRef
Zurück zum Zitat Ren, X., Sun, Y., Wang, Z., Barceló, D., Wang, Q., Zhang, Z., & Zhang, Y. (2020). Abundance and characteristics of microplastic in sewage sludge: A case study of Yangling, Shaanxi province, China. Case Studies in Chemical and Environmental Engineering, 2, 100050.CrossRef Ren, X., Sun, Y., Wang, Z., Barceló, D., Wang, Q., Zhang, Z., & Zhang, Y. (2020). Abundance and characteristics of microplastic in sewage sludge: A case study of Yangling, Shaanxi province, China. Case Studies in Chemical and Environmental Engineering, 2, 100050.CrossRef
Zurück zum Zitat Rochman, C. M. (2018). Microplastics research—From sink to source. Science, 360(6384), 28–29.CrossRef Rochman, C. M. (2018). Microplastics research—From sink to source. Science, 360(6384), 28–29.CrossRef
Zurück zum Zitat Rodrigues, D., Antunes, J., Otero, V., Sobral, P., & Costa, M. H. (2020). Distribution patterns of microplastics in seawater surface at a Portuguese estuary and marine park. Frontiers in Environmental Science, 8, 582217.CrossRef Rodrigues, D., Antunes, J., Otero, V., Sobral, P., & Costa, M. H. (2020). Distribution patterns of microplastics in seawater surface at a Portuguese estuary and marine park. Frontiers in Environmental Science, 8, 582217.CrossRef
Zurück zum Zitat Rolsky, C., Kelkar, V., Driver, E., & Halden, R. U. (2020). Municipal sewage sludge as a source of microplastics in the environment. Current Opinion in Environmental Science & Health, 14, 16–22.CrossRef Rolsky, C., Kelkar, V., Driver, E., & Halden, R. U. (2020). Municipal sewage sludge as a source of microplastics in the environment. Current Opinion in Environmental Science & Health, 14, 16–22.CrossRef
Zurück zum Zitat Scopetani, C., Chelazzi, D., Mikola, J., Leiniö, V., Heikkinen, R., Cincinelli, A., & Pellinen, J. (2020). Olive oil-based method for the extraction, quantification and identification of microplastics in soil and compost samples. Science of the Total Environment, 733, 139338. Scopetani, C., Chelazzi, D., Mikola, J., Leiniö, V., Heikkinen, R., Cincinelli, A., & Pellinen, J. (2020). Olive oil-based method for the extraction, quantification and identification of microplastics in soil and compost samples. Science of the Total Environment, 733, 139338.
Zurück zum Zitat Shim, W. J., Song, Y. K., Hong, S. H., & Jang, M. (2016). Identification and quantification of microplastics using Nile red staining. Marine Pollution Bulletin, 113(1–2), 469–476.CrossRef Shim, W. J., Song, Y. K., Hong, S. H., & Jang, M. (2016). Identification and quantification of microplastics using Nile red staining. Marine Pollution Bulletin, 113(1–2), 469–476.CrossRef
Zurück zum Zitat Silva, A. B., Bastos, A. S., Justino, C. I., da Costa, J. P., Duarte, A. C., & Rocha-Santos, T. A. (2018). Microplastics in the environment: Challenges in analytical chemistry-A review. Analytica chimica acta, 1017, 1–19. Silva, A. B., Bastos, A. S., Justino, C. I., da Costa, J. P., Duarte, A. C., & Rocha-Santos, T. A. (2018). Microplastics in the environment: Challenges in analytical chemistry-A review. Analytica chimica acta, 1017, 1–19.
Zurück zum Zitat Sun, J., Dai, X., Wang, Q., van Loosdrecht, M. C., & Ni, B. J. (2019). Microplastics in wastewater treatment plants: Detection, occurrence and removal. Water Research, 152, 21–37.CrossRef Sun, J., Dai, X., Wang, Q., van Loosdrecht, M. C., & Ni, B. J. (2019). Microplastics in wastewater treatment plants: Detection, occurrence and removal. Water Research, 152, 21–37.CrossRef
Zurück zum Zitat Tadsuwan, K., & Babel, S. (2022). Microplastic abundance and removal via an ultrafiltration system coupled to a conventional municipal wastewater treatment plant in Thailand. Journal of Environmental Chemical Engineering, 10(2), 107142.CrossRef Tadsuwan, K., & Babel, S. (2022). Microplastic abundance and removal via an ultrafiltration system coupled to a conventional municipal wastewater treatment plant in Thailand. Journal of Environmental Chemical Engineering, 10(2), 107142.CrossRef
Zurück zum Zitat Tagg, A. S., Sapp, M., Harrison, J. P., & Ojeda, J. J. (2015). Identification and quantification of microplastics in wastewater using focal plane array-based reflectance micro-FT-IR imaging. Analytical Chemistry, 87(12), 6032–6040.CrossRef Tagg, A. S., Sapp, M., Harrison, J. P., & Ojeda, J. J. (2015). Identification and quantification of microplastics in wastewater using focal plane array-based reflectance micro-FT-IR imaging. Analytical Chemistry, 87(12), 6032–6040.CrossRef
Zurück zum Zitat Tian, L., Skoczynska, E., van Putten, R. J., Leslie, H. A., & Gruter, G. J. M. (2023). Quantification of polyethylene terephthalate micro-and nanoplastics in domestic wastewater using a simple three-step method. Science of the Total Environment, 857, 159209.CrossRef Tian, L., Skoczynska, E., van Putten, R. J., Leslie, H. A., & Gruter, G. J. M. (2023). Quantification of polyethylene terephthalate micro-and nanoplastics in domestic wastewater using a simple three-step method. Science of the Total Environment, 857, 159209.CrossRef
Zurück zum Zitat Üstün, G. E., Bozdaş, K., & Can, T. (2022). Abundance and characteristics of microplastics in an urban wastewater treatment plant in Turkey. Environmental Pollution, 310, 119890.CrossRef Üstün, G. E., Bozdaş, K., & Can, T. (2022). Abundance and characteristics of microplastics in an urban wastewater treatment plant in Turkey. Environmental Pollution, 310, 119890.CrossRef
Zurück zum Zitat van den Berg, P., Huerta-Lwanga, E., Corradini, F., & Geissen, V. (2020). Sewage sludge application as a vehicle for microplastics in eastern Spanish agricultural soils. Environmental Pollution, 261, 114198.CrossRef van den Berg, P., Huerta-Lwanga, E., Corradini, F., & Geissen, V. (2020). Sewage sludge application as a vehicle for microplastics in eastern Spanish agricultural soils. Environmental Pollution, 261, 114198.CrossRef
Zurück zum Zitat Walia, M. (2018). Identification and quantification of microplastics using Nile red staining. Student Research Proceedings, 3(1). Walia, M. (2018). Identification and quantification of microplastics using Nile red staining. Student Research Proceedings, 3(1).
Zurück zum Zitat Wang, L., Shi, Y., Chai, J., Huang, L., Wang, Y., Wang, S., et al. (2022). Transfer of microplastics in sludge upon Fe (II)-persulfate conditioning and mechanical dewatering. Science of the Total Environment, 156316, 156316.CrossRef Wang, L., Shi, Y., Chai, J., Huang, L., Wang, Y., Wang, S., et al. (2022). Transfer of microplastics in sludge upon Fe (II)-persulfate conditioning and mechanical dewatering. Science of the Total Environment, 156316, 156316.CrossRef
Zurück zum Zitat Weber, C. J., & Opp, C. (2020). Spatial patterns of mesoplastics and coarse microplastics in floodplain soils as resulting from land use and fluvial processes. Environmental Pollution, 267, 115390.CrossRef Weber, C. J., & Opp, C. (2020). Spatial patterns of mesoplastics and coarse microplastics in floodplain soils as resulting from land use and fluvial processes. Environmental Pollution, 267, 115390.CrossRef
Zurück zum Zitat Wei, F., Xu, C., Chen, C., Wang, Y., Lan, Y., Long, L., et al. (2022). Distribution of microplastics in the sludge of wastewater treatment plants in Chengdu, China. Chemosphere, 287, 132357.CrossRef Wei, F., Xu, C., Chen, C., Wang, Y., Lan, Y., Long, L., et al. (2022). Distribution of microplastics in the sludge of wastewater treatment plants in Chengdu, China. Chemosphere, 287, 132357.CrossRef
Zurück zum Zitat Xu, Q., Xing, R., Sun, M., Gao, Y., & An, L. (2020). Microplastics in sediments from an interconnected river-estuary region. Science of the Total Environment, 729, 139025.CrossRef Xu, Q., Xing, R., Sun, M., Gao, Y., & An, L. (2020). Microplastics in sediments from an interconnected river-estuary region. Science of the Total Environment, 729, 139025.CrossRef
Zurück zum Zitat Yang, L., Zhang, Y., Kang, S., Wang, Z., & Wu, C. (2021). Microplastics in soil: A review on methods, occurrence, sources, and potential risk. Science of the Total Environment, 780, 146546.CrossRef Yang, L., Zhang, Y., Kang, S., Wang, Z., & Wu, C. (2021). Microplastics in soil: A review on methods, occurrence, sources, and potential risk. Science of the Total Environment, 780, 146546.CrossRef
Zurück zum Zitat Yuan, F., Zhao, H., Sun, H., Sun, Y., Zhao, J., & Xia, T. (2022). Investigation of microplastics in sludge from five wastewater treatment plants in Nanjing. China. Journal of Environmental Management, 301, 113793. Yuan, F., Zhao, H., Sun, H., Sun, Y., Zhao, J., & Xia, T. (2022). Investigation of microplastics in sludge from five wastewater treatment plants in Nanjing. China. Journal of Environmental Management, 301, 113793.
Zurück zum Zitat Zhang, Z., & Chen, Y. (2020). Effects of microplastics on wastewater and sewage sludge treatment and their removal: A review. Chemical Engineering Journal, 382, 122955.CrossRef Zhang, Z., & Chen, Y. (2020). Effects of microplastics on wastewater and sewage sludge treatment and their removal: A review. Chemical Engineering Journal, 382, 122955.CrossRef
Zurück zum Zitat Zhang, Y., Gao, T., Kang, S., & Sillanpää, M. (2019). Importance of atmospheric transport for microplastics deposited in remote areas. Environmental Pollution, 254, 112953.CrossRef Zhang, Y., Gao, T., Kang, S., & Sillanpää, M. (2019). Importance of atmospheric transport for microplastics deposited in remote areas. Environmental Pollution, 254, 112953.CrossRef
Zurück zum Zitat Zhang, K., Xu, S., Zhang, Y., Lo, Y., Liu, M., Ma, Y., et al. (2022). A systematic study of microplastic occurrence in urban water networks of a metropolis. Water Research, 223, 118992. Zhang, K., Xu, S., Zhang, Y., Lo, Y., Liu, M., Ma, Y., et al. (2022). A systematic study of microplastic occurrence in urban water networks of a metropolis. Water Research, 223, 118992.
Zurück zum Zitat Zhang, X., Yan, B., & Wang, X. (2020). Selection and optimization of a protocol for extraction of microplastics from Mactra veneriformis. Science of the Total Environment, 746, 141250. Zhang, X., Yan, B., & Wang, X. (2020). Selection and optimization of a protocol for extraction of microplastics from Mactra veneriformis. Science of the Total Environment, 746, 141250.
Zurück zum Zitat Ziajahromi, S., Neale, P. A., Rintoul, L., & Leusch, F. D. (2017). Wastewater treatment plants as a pathway for microplastics: Development of a new approach to sample wastewater-based microplastics. Water Research, 112, 93–99.CrossRef Ziajahromi, S., Neale, P. A., Rintoul, L., & Leusch, F. D. (2017). Wastewater treatment plants as a pathway for microplastics: Development of a new approach to sample wastewater-based microplastics. Water Research, 112, 93–99.CrossRef
Metadaten
Titel
Micro-Nano-Plastics in Sewage Sludge: Sources, Occurrence, and Potential Environmental Risks
verfasst von
Deachen Angmo
Jaswinder Singh
Sartaj Ahmad Bhat
Babita Thakur
Adarsh Pal Vig
Copyright-Jahr
2024
DOI
https://doi.org/10.1007/978-3-031-51967-3_14