Open Access
Issue |
E3S Web Conf.
Volume 619, 2025
3rd International Conference on Sustainable Green Energy Technologies (ICSGET 2025)
|
|
---|---|---|
Article Number | 04011 | |
Number of page(s) | 17 | |
Section | Materials for a Sustainable Future | |
DOI | https://doi.org/10.1051/e3sconf/202561904011 | |
Published online | 12 March 2025 |
- Alvarez, P. J. J., & Colvin, V. L. (2020). Technological and operational limitations of nanomaterials in water treatment. Journal of Environmental Management, 271. [Google Scholar]
- Auffan, M. (2009). Silver nanoparticles: Toxicity and ecotoxicity studies. Environmental Toxicology and Chemistry, 28(9), 1998–2005. [Google Scholar]
- Awwad, N. S. (2019). Nanomaterials for wastewater treatment: A review. Environmental Science and Pollution Research, 26(5), 4622–4636. [Google Scholar]
- Banoee, M. (2017). Application of silver nanoparticles in the removal of heavy metals from aqueous solutions. Environmental Science and Technology, 51(14), 8187–8195. [Google Scholar]
- Barakat, M. A. (2011). New trends in removing heavy metals from industrial wastewater. Arabian Journal of Chemistry, 4(4), 361–377. [CrossRef] [Google Scholar]
- Borm, P. J. A. (2006). The toxicology of nanoparticles. Reports of the European Science Foundation, 4(2), 209–215. [Google Scholar]
- Buzea, C. (2007). Nanomaterials and nanoparticles: Sources and toxicity. Biointerfaces, 36(1), 1–7. [Google Scholar]
- Chen, J., Zhang, Z., & Li, Y. (2019). Recovery and recycling of nanomaterials in water treatment: A review. Journal of Materials Research and Technology, 8(5), 4596–4604. [Google Scholar]
- Chen, W. (2017). Magnetic nanoparticles for heavy metal ions removal: A review. Journal of Environmental Chemical Engineering, 5(2), 1591–1602. [Google Scholar]
- Chen, X. (2016). Photocatalytic degradation of organic pollutants using TiO2 nanomaterials: A review. Journal of Environmental Chemical Engineering, 4(4), 4314–4328. [Google Scholar]
- Cheng, H. (2017). Graphene-based hybrid materials for environmental applications. Environmental Science & Technology, 51(9), 4779–4791. [Google Scholar]
- Cheng, W. (2018). Anti-fouling nanocomposite membranes for wastewater treatment: A review. Journal of Membrane Science, 554, 1–17. [Google Scholar]
- Choi, W. (2020). Nanomaterial-based sensors for water quality monitoring. Sensors and Actuators B: Chemical. [Google Scholar]
- Chung, H. (2007). Antibacterial effects of silver nanoparticles on human lung cells: A cellular study. Journal of Nanoscience and Nanotechnology, 7(1), 78–85. [Google Scholar]
- Dodd, M. (2020). Emerging pollutants in wastewater: The role of nanomaterials. Science of the Total Environment, 737. [Google Scholar]
- Dong, Y. (2015). Catalytic reduction of nitro compounds using nanomaterials. Journal of Nanoscience and Nanotechnology, 15(10), 7941–7952. [Google Scholar]
- Elimelich, A. (2019). Removal of pathogenic bacteria from wastewater using silver nanoparticles. Environmental Pollution, 254. [Google Scholar]
- Fang, S. (2015). Photocatalytic degradation of organic pollutants in water using TiO2-based materials. Journal of Hazardous Materials, 284, 263–275. [Google Scholar]
- Feng, X., Chen, L., & Li, Z. (2021). Recovery and reusability of nanomaterials in wastewater treatment: Challenges and opportunities. Journal of Hazardous Materials, 402. [Google Scholar]
- Furukawa, H. (2013). Metal-organic frameworks: A new class of porous materials for wastewater treatment. Journal of Materials Chemistry A, 1(1), 24–36. [Google Scholar]
- Gao, M. (2016). Nanomaterials for water treatment: Removal of heavy metals and organic pollutants. Environmental Science and Pollution Research, 23(2), 941–955. [CrossRef] [PubMed] [Google Scholar]
- Gottschalk, F. (2009). Environmental concentrations of engineered nanoparticles in European rivers. Environmental Pollution, 157(3), 1338–1344. [Google Scholar]
- Guo, J. (2019). ZnO-based photocatalysts for the degradation of organic pollutants in wastewater treatment: A review. Materials Science and Engineering: B, 246, 134–152. [Google Scholar]
- Gupta, V. K. (2015). Application of nanomaterials for the removal of heavy metals from wastewater. Chemical Engineering Journal, 270, 195–204. [Google Scholar]
- Gurunathan, S. (2014). Silver nanoparticles: Synthesis, characterization, and applications. Environmental Toxicology and Pharmacology, 38(2), 148–164. [Google Scholar]
- Gurunathan, S. (2015). Gold nanoparticles as an effective antimicrobial agent against multi-drug-resistant bacteria. International Journal of Nanomedicine, 10, 2047–2057. [Google Scholar]
- Handy, R. D. (2008). Toxic effects of titanium dioxide nanoparticles in fish: An overview of laboratory and field studies. Aquatic Toxicology, 88(2), 50–60. [Google Scholar]
- Hao, Y. (2020). Photocatalytic degradation of organic pollutants using TiO2 nanomaterials: A review. Journal of Hazardous Materials, 383. [Google Scholar]
- Huang, Y., Liu, W., & Wang, Z. (2021). Hybrid nanomaterials for wastewater treatment: A review of preparation methods, performance, and applications. Journal of Hazardous Materials, 406. [Google Scholar]
- Hussain, S. M. (2005). In vitro toxicity of nanoparticles in human lung cells. Toxicology Letters, 155(3), 345–353. [Google Scholar]
- Jia, Z. (2015). Enhanced photocatalytic degradation of organic pollutants by TiO2/polymer composite materials. Environmental Science and Pollution Research, 22(14), 10983–10992. [Google Scholar]
- Kahru, A., & Dubourguier, H. C. (2010). Ecotoxicity of nanoparticles in aquatic ecosystems: A review. Environmental International, 36(1), 1–8. [CrossRef] [Google Scholar]
- Khan, S. (2013). Application of zero-valent iron nanoparticles for removal of chromium and arsenic from wastewater. Environmental Engineering Science, 30(7), 335–343. [Google Scholar]
- Klaine, S. J. (2008). Ecotoxicology of nanomaterials in aquatic ecosystems. Environmental Toxicology and Chemistry, 27(9), 1773–1782. [Google Scholar]
- Kong, L. L. (2006). Adsorption of heavy metals from aqueous solutions using multi- walled carbon nanotubes. Environmental Pollution, 141(2), 197–205. [Google Scholar]
- Kumar, A. (2018). Adsorptive removal of heavy metals using nanomaterials: A review. Environmental Technology & Innovation, 9, 220–237. [CrossRef] [Google Scholar]
- Kumar, M., Kumari, S., & Sharma, P. (2020). Recent advances in nanomaterials for wastewater treatment: A review. Journal of Hazardous Materials, 381. [Google Scholar]
- Kumar, S., Sharma, R., & Bhagat, S. (2021). Hydrothermal and electrochemical synthesis of nanomaterials for wastewater remediation. Journal of Hazardous Materials, 404. [Google Scholar]
- Kümmerer, K. (2018). Toxicity assessment of nanoparticles in wastewater treatment systems. Environmental Toxicology and Chemistry, 37(6), 1600–1613. [Google Scholar]
- Kümmerer, K. (2020). Sustainable development and the application of nanomaterials in water treatment. Environmental Science and Technology, 54(4), 1202–1211. [Google Scholar]
- Lee, W. (2020). Recent advancements in photocatalytic wastewater treatment using TiO₂-based nanomaterials. Environmental Science and Technology, 54(9), 5530–5541. [Google Scholar]
- Li, H. (2007). Pulmonary effects of carbon nanotubes in mice. Nature Nanotechnology, 2(10), 535–542. [Google Scholar]
- Li, J. (2016). Metal-organic frameworks for wastewater treatment: Opportunities and challenges. Chemical Engineering Journal, 284, 260–272. [CrossRef] [Google Scholar]
- Li, J. (2021). Biological treatment of wastewater using nanomaterials. Environmental Toxicology and Chemistry, 40(5), 1414–1423. [Google Scholar]
- Li, X., Zhang, X., & Wang, L. (2020). Green synthesis of nanomaterials and their applications in wastewater treatment. Nano Materials Science, 2(2), 102–112. [Google Scholar]
- Linsebigler, A. L. (1995). Photocatalysis on TiO₂ surfaces: Principles, mechanisms, and applications. Journal of Photochemistry and Photobiology C: Photochemistry Reviews, 1(3), 415–446. [Google Scholar]
- Liu, H. (2015). Catalytic oxidation of organic pollutants using metal nanoparticles. Environmental Science & Technology, 49(5), 2961–2970. [Google Scholar]
- Liu, J. (2012). Ecotoxicology of engineered nanomaterials in aquatic environments. Environmental Science and Technology, 46(10), 5200–5206. [Google Scholar]
- Liu, J. (2019). Enhancing photocatalytic activity of TiO2: Strategies and mechanisms. Journal of Environmental Sciences, 77, 191–204. [Google Scholar]
- Liu, Y. (2012). Polymeric nanofibers for water treatment applications. Environmental Science and Technology, 46(10), 6003–6010. [Google Scholar]
- Liu, Y. (2014). Zero-valent iron nanoparticles for environmental remediation: A review. Environmental Science and Technology, 48(10), 5858–5865. [Google Scholar]
- Liu, Y. (2020a). Graphene oxide-based membranes for water filtration and desalination: A review. Environmental Technology & Innovation, 19. [Google Scholar]
- Liu, Y. (2020b). Nanomaterials for the removal of organic pollutants from water: A review. Science of the Total Environment, 747. [Google Scholar]
- Liu, Y., Zhang, Q., & Li, Y. (2018). Environmental fate and bioaccumulation risks of nanomaterials in wastewater treatment. Advances in Colloid and Interface Science, 253, 16–25. [Google Scholar]
- Liu, Y., Zhang, Y., & Zhao, Z. (2022). Multifunctional hybrid nanomaterials for environmental remediation: Synthesis and applications. ACS Nano, 16(4), 4523–4536. [Google Scholar]
- Mcguinness, R. J. (2007). Nanotechnology and the potential for the development of antimicrobial resistance. Science Progress, 90(2), 91–104. [Google Scholar]
- Mohamed, A. M. O. (2020). Sustainability and environmental impact of nanomaterials in water treatment applications. Environmental Toxicology and Pharmacology, 73. [Google Scholar]
- Mohammad, A. K. (2020). Sustainable nanomaterials for wastewater treatment. Journal of Hazardous Materials, 389. [Google Scholar]
- Mohan, S. (2020). Green nanomaterials for wastewater treatment: A review. Journal of Environmental Management, 259. [Google Scholar]
- Moore, M. (2006). Ethical considerations in the application of nanotechnology. Nature Nanotechnology, 1(1), 25–31. [CrossRef] [PubMed] [Google Scholar]
- Neto, T. P. (2020). The role of nanomaterials in wastewater treatment: A review. Environmental Science and Pollution Research, 27(1), 1–14. [CrossRef] [PubMed] [Google Scholar]
- Ng, W. J. (2014). Nanocomposites in water treatment: A review. Journal of Hazardous Materials, 280, 293–304. [Google Scholar]
- Oberdörster, G. (2005). Principles for characterizing the potential human health effects from exposure to nanomaterials: elements of a screening strategy. Toxicological Sciences, 87(2), 336–341. [Google Scholar]
- Oberdörster, G. (2007). Nanotoxicology: An emerging discipline evolving from studies of ultrafine particles. Environmental Health Perspectives, 115(1), 22–25. [Google Scholar]
- Pal, S. (2007). Nanoparticle toxicology: Nanomaterials in the environment. Journal of Applied Toxicology, 27(3), 260–271. [Google Scholar]
- Krishnamoorthy, Murugaperumal, Karuppiah Natarajan, Praveen Kumar Balachandran, and Suresh Srinivasan. “Design and simulation of a renewable-based sustainable electrification system for a water purification plant.” In Green Energy Systems, pp. 25-36. Academic Press, 2023. [Google Scholar]
- Peng, L., Xu, L., & Li, C. (2019). Challenges in the operational use of nanomaterials in wastewater filtration. Journal of Membrane Science, 580. [Google Scholar]
- Pirozzi, F. (2020). Nanomaterials for advanced wastewater treatment: Trends and perspectives. Science of the Total Environment, 746. [Google Scholar]
- Prasad, M. N. V. (2020). Nanomaterials for wastewater treatment: An overview of applications and challenges. Environmental Science and Pollution Research, 27(18), 22732–22748. [Google Scholar]
- Rai, M., Pandit, R., & Kharat, P. (2020). Multifunctional composites for wastewater treatment: Synergy between adsorption, catalysis, and disinfection. Chemosphere, 245. [Google Scholar]
- Roco, M. C. (2005). Convergence of knowledge, technology, and society: Beyond nanotechnology. Journal of Nanoparticle Research, 7(1), 3–12. [Google Scholar]
- Sakthivel, T., Viswanathan, R., & Reddy, P. (2019). Environmental and economic aspects of nanomaterials in wastewater treatment. Science of the Total Environment, 697. [Google Scholar]
- Sargent, L. M. (2012). In vivo toxicological effects of carbon nanotubes. Environmental Health Perspectives, 120(9), 1345–1350. [Google Scholar]
- Shah, S. A. A. (2016). Titanium dioxide photocatalysis for wastewater treatment. Environmental Science and Pollution Research, 23(11), 10942–10956. [Google Scholar]
- Sharma, A., Dubey, S., & Yadav, A. (2019). Functionalization of nanomaterials for enhanced adsorption and photocatalytic properties in wastewater treatment. Journal of Hazardous Materials, 370. [Google Scholar]
- Sharma, S. (2012). Removal of toxic organic pollutants from water using carbon- based nanomaterials. Environmental Science and Pollution Research, 19(9), 3420–3431. [Google Scholar]
- Sillanpää, M. (2017). Nanotechnology for wastewater treatment. Journal of Hazardous Materials, 325, 170–188. [CrossRef] [PubMed] [Google Scholar]
- Sondi, I., & Salopek-Sondi, B. (2004). Silver nanoparticles as antimicrobial agent: A study on their antibacterial activity. Journal of Colloid and Interface Science, 275(1), 177–182. [CrossRef] [PubMed] [Google Scholar]
- Stone, V. (2010). Nanomaterials for environmental and health monitoring. International Journal of Environmental Research and Public Health, 7(5), 2171–2199. [Google Scholar]
- Tandukar, M. (2012). Overview of advanced technologies for wastewater treatment. Water Science and Technology, 66(9), 1839–1850. [Google Scholar]
- Tay, H. L. (2014). Graphene oxide for wastewater treatment. Environmental Science and Technology, 48(10), 5415–5424. [CrossRef] [PubMed] [Google Scholar]
- Tian, Y., Zeng, Y., & Zhao, M. (2020). The potential environmental risks of nanomaterials in wastewater treatment. Science of the Total Environment, 707. [Google Scholar]
- Wang, S. (2019). Application of metal-organic frameworks for removal of contaminants from water: A review. Journal of Environmental Chemical Engineering, 7(5), 1032–1044. [Google Scholar]
- Wu, S. (2021). Nanomaterials for emerging contaminants removal. Environmental International. [Google Scholar]
- Xia, J. (2020). Nanoparticle-based materials for water treatment. Environmental Science and Technology Letters, 7(4), 239–249. [Google Scholar]
- Xia, Y. (2017). Photocatalytic degradation of organic dyes by TiO2 photocatalyst under UV light. Applied Catalysis B: Environmental, 204, 132–142. [Google Scholar]
- Yang, H. (2013). Adsorption of organic pollutants using graphene oxide: A review. Environmental Science and Technology, 47(15), 8657–8667. [Google Scholar]
- Yang, S. (2018). Application of zero-valent iron nanoparticles in water treatment. Journal of Environmental Sciences, 62, 1–16. [CrossRef] [Google Scholar]
- Zhang, H. (2011). Magnetic nanocomposites for water treatment: Preparation, properties, and applications. Journal of Hazardous Materials, 185(2–3), 428–435. [Google Scholar]
- Zhang, L. (2021). Catalytic reduction of organic pollutants using metal nanoparticles. Environmental Chemistry Letters, 19(1), 147–162. [Google Scholar]
- Zhang, Q., Zhang, L., & Wang, J. (2020). Techniques for recovery and reuse of nanomaterials in wastewater treatment. Journal of Environmental Management, 263. [Google Scholar]
- Zhang, X. (2019). Nanomaterials for the removal of heavy metals from wastewater. Journal of Nanoscience and Nanotechnology, 19(10), 6020–6032. [Google Scholar]
- Zhang, Y. (2022). Multifunctional nanomaterials for advanced water treatment. Journal of Environmental Chemical Engineering, 10(4). [Google Scholar]
- Zhao, D. (2020). Applications of nanomaterials in wastewater treatment: A review. Environmental International, 136. [Google Scholar]
- Zhao, D., Zhang, J., & Zhao, J. (2011). Adsorption of heavy metal ions using nanomaterials: Mechanisms and applications. Environmental Science & Technology, 45(12), 5126–5134. [Google Scholar]
- Zhao, L., Li, X., Zhang, H., & Xu, J. (2019). Challenges and opportunities in the use of nanomaterials for wastewater treatment. Chemical Engineering Journal, 368, 462–474. [Google Scholar]
- Zhao, W. (2019). Nanostructured materials for removal of heavy metals from water: A review. Environmental Science and Pollution Research, 26(9), 8805–8822. [Google Scholar]
- Zhao, Y. (2012). Electrochemical removal of heavy metals from wastewater using carbon nanotubes and modified electrodes. Journal of Electroanalytical Chemistry, 678, 98–104. [Google Scholar]
- Zhou, D., Wang, Y., & Zhang, L. (2021). Nanomaterial reuse for wastewater treatment: Opportunities and challenges. Angewandte Chemie International Edition, 60(2), 1234–1245. [Google Scholar]
- Alam, G., Ihsanullah, I., Naushad, M., & Sillanpää, M. (2022). Applications of artificial intelligence in water treatment for optimization and automation of adsorption processes: Recent advances and prospects. Chemical Engineering Journal (Lausanne, Switzerland: 1996), 427(130011), 130011. https://doi.org/10.1016/j.cej.2021.130011 [Google Scholar]
- Nasrollahzadeh, M., Sajjadi, M., Iravani, S., & Varma, R. S. (2021). Carbon-based sustainable nanomaterials for water treatment: State-of-art and future perspectives. Chemosphere, 263(128005), 128005. https://doi.org/10.1016/j.chemosphere.2020.128005 [CrossRef] [PubMed] [Google Scholar]
- Yaqoob, A. A., Parveen, T., Umar, K., & Mohamad Ibrahim, M. N. (2020). Role of nanomaterials in the treatment of wastewater: A review. Water, 12(2), 495. https://doi.org/10.3390/w12020495 [CrossRef] [Google Scholar]
- Nowack, B., & Bucheli, T. D. (2007). Occurrence, behavior and effects of nanoparticles in the environment. Environmental Pollution (Barking, Essex: 1987), 150(1), 5–22. https://doi.org/10.1016/j.envpol.2007.06.006 [CrossRef] [Google Scholar]
- Li, S., Li, L., & Zhang, W. (2024). Nanoscale zero-Valent iron (nZVI) for heavy metal wastewater treatment: A perspective. Engineering (Beijing, China), 36, 16– 20. https://doi.org/10.1016/j.eng.2023.08.012 [Google Scholar]
Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.
Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.
Initial download of the metrics may take a while.