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Lab-scale characterization of emissions from incineration of halogen- and sulfur-containing nanowastes by use of a tubular furnace

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Abstract

Many solid materials contain nanoparticles to enhance their functionalities. The question of whether they may release nanoparticles at different moments of their life cycle is raised. Lifecycle includes waste management. There is therefore a need to determine the fate of nanoparticles when the materials they are incorporated in are incinerated. The present study aims at shedding light on these issues. In this context, three real-life wastes selected for their specific compositions were combusted in a lab-scale furnace under incineration conditions. The first two wastes contained nanoparticles, namely silica and titanium dioxide. The third waste was purposely nanoparticle free. In addition, the waste containing titanium dioxide did contain chlorine and the nanoparticle-free material was partly made of sulfur. Disposal of halogen and sulfur-containing garbage implies an incineration temperature of 1100 °C. This complex waste composition was seen as an opportunity to assess possible interactions between nanoparticles and hazardous elements such as chlorine and sulfur during the combustion. Most of the analyses were supported by electronic microscopy imaging after having sampled particles in the fumes and in the bottom ashes. Eventually, three mechanistic scenarios were drawn from these experiments. Focus was made on the evolution of the nanostructure. It was observed to be preserved for the first waste. It disappeared both from the aerosol and the residue for the second waste. The third material, though not initially nanostructured, led to the formation of a nanostructure in the aerosol.

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References

  • Baumann W, Teuscher N, Hauser M, Gerhmann J, Paul HR, Stapf D (2017) Behaviour of engineered nanoparticles in a lab-scale flame and combustion chamber. Energy Procedia 120:705–712

    Article  CAS  Google Scholar 

  • Chivas C, Bertrand JP, Malvaux C, Marlair G, Tack K (2006) Smoke toxicity from combustion products based on polymers containing flame retardant additives. In: Proceedings of “The flame retardants Conference 2006” London United Kingdom, pp 59–69.

  • Chivas-Joly C, Longuet C, Pourchez J, Leclerc L, Sarry G, Lopez-Cuesta JM (2019) Physical, morphological and chemical modification of Al-based nanofillers in by-products of incinerated nanocomposites and related biological outcome. J Hazard Mater 365:405–412

    Article  CAS  Google Scholar 

  • Fujimori T, Toda A, Mukai K, Takaoka M (2020) Incineration of carbon nanomaterials with sodium chloride as a potential source of PCDD/Fs and PCBs. J Hazard Mater 382:121030

    Article  CAS  Google Scholar 

  • Giese B, Klaessig F, Park B et al (2018) Risks, release and concentrations of engineered nanomaterial in the environment. Sci Rep 8:1565

    Article  Google Scholar 

  • Holder AL, Vejerano EP, Zhou XZ, Marr LC (2013) Nanomaterial disposal by incineration. Environ Sci Process Impacts 15(9):1652–1664

    Article  CAS  Google Scholar 

  • Jones F, Tran H, Daniel L, Zhao L, Hupa M (2013) Thermal stability of zinc compounds. Energy Fuels 27(10):5663–5669

    Article  CAS  Google Scholar 

  • Kessler R (2011) Engineered nanoparticles in consumer products: understanding a new ingredient. Environ Health Perspect 119(3):120–125

    Article  Google Scholar 

  • Le Bihan O, Ounoughene G, Meunier L, Debray B, Aguerre-Chariol O (2017) Incineration of a commercial coating with nano CeO2. J Phys Conf Ser 838:012023

    Article  Google Scholar 

  • Lu P et al (2019) Review on fate of chlorine during thermal processing of solid wastes. J Environ Sci 78:13–28

    Article  Google Scholar 

  • Massari A, Beggio M, Hreglich S, Marin R, Zuin S (2014) Behavior of TiO2 nanoparticles during incineration of solid paint waste: A lab-scale test. Waste Manage 34(10):1897–1907

    Article  CAS  Google Scholar 

  • OCDE (2016), Nanomaterials in Waste Streams : Current Knowledge on Risks and Impacts, Éditions OCDE, Paris. https://doi.org/10.1787/9789264249752-en

  • Ounoughene G, Chivas-Joly C, Longuet C, Le Bihan O, Lopez-Cuesta JM, Le Coq L (2019) Evaluation of nanosilica emission in polydimethylsiloxane composite during incineration. J Hazard Mater 371:415–422

    Article  CAS  Google Scholar 

  • Ounoughene G, Le Bihan O, Chivas-Joly C, Motzkus C, Longuet C, Debray B, Joubert A, Le Coq L, Lopez-Cuesta JM (2015) Behavior and Fate of Halloysite Nanotubes (HNTs) When Incinerating PA6/HNTs Nanocomposite. Environ Sci Technol 49(9):5450–5457

    Article  CAS  Google Scholar 

  • Ounoughene G, Le Bihan O, Debray B, Chivas-Joly C, Longuet C, Joubert A, Lopez-Cuesta J-M, Le Coq L (2017) Thermal disposal of waste containing nanomaterials: first investigations on a methodology for risk management. J Phys Conf Ser 838(1):012024

    Article  Google Scholar 

  • Part F et al (2018) A review of the fate of engineered nanomaterials in municipal solid waste streams. Waste Manag 75:427–449

    Article  CAS  Google Scholar 

  • Paur HR, Baumann W, Hauser M, Lang I, Teuscher N, Seifert H, Stapf D (2017) Thermal stability and material balance of nanomaterials in waste incineration. J Phys Conf Ser 838:012012

    Article  Google Scholar 

  • Pourchez J, Chivas-Joly C, Longuet C, Leclerc L, Sarry G, Lopez-Cuesta JM (2018) End-of-life incineration of nanocomposites: new insights into nanofiller partitioning into by-products and biological outcomes of airborne emission and residual ash. Environ Sci Nano 5(8):1951–1964

    Article  CAS  Google Scholar 

  • Ray PC, Yu H, Fu PP (2009) Toxicity and Environmental Risks of Nanomaterials: Challenges and Future Needs. J Environ Sci Health C Environ Carcinog Ecotoxicol 27(1):1–35

    Article  CAS  Google Scholar 

  • R’mili B, Le Bihan O, Dutouquet C, Aguerre-Charriol O, Frejafon E (2013) Particle sampling by TEM grid filtration. Aerosol Sci Technol 47:767–775

    Article  Google Scholar 

  • Roes L, Patel MK, Worell E, Ludwig C (2012) Preliminary evaluation of risks related to waste incineration of polymer nanocomposites. Sci Total Environ 417:76–86

    Article  Google Scholar 

  • Sajid M, Ilyas M, Basheer C et al (2015) Impact of nanoparticles on human and environment: review of toxicity factors, exposures, control strategies and future prospects. Environ Sci Pollut Res 22:4122–4143

    Article  Google Scholar 

  • Singh D, Sotiriou GA, Zhang F, Mead J, Bello D, Wohlleben W, Demokritou P (2016) End-of-life thermal decomposition of nano-enabled polymers: effect of nanofiller loading and polymer matrix on by-products. Environ Science-Nano 3(6):1293–1305

    Article  CAS  Google Scholar 

  • Singh D, Wohlleben W, Roche RD, White JC, Demokritou P (2019) Thermal decomposition/incineration of nano-enabled coatings and effects of nanofiller/matrix properties and operational conditions on byproduct release dynamics: Potential environmental health implications. NanoImpact 13:44–55

    Article  Google Scholar 

  • Surendhiran D, Cui H, Lin L (2020) Mode of transfer, toxicity and negative impacts of engineered nanoparticles on environment, human and animal health. In: Hussain CM (ed) The ELSI Handbook of Nanotechnology: Risk, Safety, Elsi and Commercialization. Wiley, New York

    Google Scholar 

  • Tewari D, Baul S (2019) Global Nanotechnology Market: opportunities and forecasts 2018–2025. https://www.alliedmarketresearch.com/nanotechnology-market

  • Tran DT, Joubert AC, Venditti D, Durecu S, Fiani E, Meunier T, Le Bihan O, Le Coq L (2016) Characterization of bulk-solid waste containing nano-fillers prior to waste treatment. Waste Biomass Valorization. https://doi.org/10.1007/s12649-016-9757-0

    Article  Google Scholar 

  • Vejerano EP, Holder AL, Marr LC (2013) Emissions of Polycyclic Aromatic Hydrocarbons, Polychlorinated Dibenzo-p-Dioxins, and Dibenzofurans from Incineration of Nanomaterials. Environ Sci Technol 47(9):4866–4874

    Article  CAS  Google Scholar 

  • Vejerano EP, Leon EC, Holder AL, Marr LC (2014) Characterization of particle emissions and fate of nanomaterials during incineration. Environ Sci Nano 1(2):133–143

    Article  CAS  Google Scholar 

  • Walser T, Gottschalk F (2014) Stochastic fate analysis of engineered nanoparticles in incineration plants. J Clean Prod 80:241–251

    Article  CAS  Google Scholar 

  • Walser T et al (2012) Persistence of engineered nanoparticles in a municipal solid-waste incineration plant. Nat Nanotechnol 7(8):520–524

    Article  CAS  Google Scholar 

  • Wilson N (2018) Nanoparticles: Environmental problems or problem solvers ? Bioscience 68(4):241–246

    Article  Google Scholar 

Download references

Acknowledgments

This research was funded by the French Environment and Energy Management Agency (ADEME) under contract number 1581C0096. We would like to thank M. Fiani and Ms Poncelet from ADEME for their support in the course of this project. We thank the French Ministry of Environment for having co-financed the project (DRC 54, DRC 59, P190). We also thank the French Ministry of Environment and the “Hauts de France” region for the funding of the facilities employed in this research.

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Correspondence to C. Dutouquet.

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Editorial responsibility: Samareh Mirkia.

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Dutouquet, C., Aguerre-Chariol, O., Meunier, L. et al. Lab-scale characterization of emissions from incineration of halogen- and sulfur-containing nanowastes by use of a tubular furnace. Int. J. Environ. Sci. Technol. 19, 1139–1152 (2022). https://doi.org/10.1007/s13762-021-03227-z

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  • DOI: https://doi.org/10.1007/s13762-021-03227-z

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