Akhter Parveen, Arshad Abdullah, Tahir Muhammad
The University of Lahore, Lahore, Pakistan.
Environ Sci Pollut Res Int. 2025 Jul;32(31):18582-18603. doi: 10.1007/s11356-025-36780-y. Epub 2025 Jul 31.
The escalating concentration of smog in addition to air pollution presents major challenges to environmental sustainability as well as public health that can require a novel solution for decline. The paper explores the use of innovative nanomaterials in nanotechnology to mitigate smog impacts and promote a sustainable environment. The study investigates the synthesis, characterization, and functional performance of nanomaterials like graphene oxide, titanium dioxide, carbon nanotubes, and metal-organic frameworks for their ability to absorb, catalyze, or break down airborne pollutants like particulate matter, NO, SO, and VOCs. Experimental data shows TiO₂-based photocatalytic nanomaterials achieve over 90% NOₓ degradation efficiency under UV light, while graphene oxide composites show superior adsorption performance (> 85%) for PM₂.₅ due to their large surface area. Amino-functionalized MOFs show superior selectivity in gas capture of CO₂ and VOCs by reducing ambient concentration by up to 70%. A quantitative LCA indicates that incorporation of nanomaterials and their role in urban infrastructure-like smog-reducing coatings and air filtration systems-can significantly reduce smog-related health risks while maintaining energy efficiency. The review highlights the potential of nanotechnology in environmental remediation so that is suggesting that integrating nanomaterials into urban infrastructure can reduce smog-related health risks by 30-50% while maintaining energy efficiency which is based on a quantitative lifecycle assessment.
除空气污染外,雾霾浓度不断上升对环境可持续性以及公众健康构成了重大挑战,这可能需要一种全新的解决方案来应对。本文探讨了纳米技术中创新型纳米材料在减轻雾霾影响和促进环境可持续性方面的应用。该研究调查了氧化石墨烯、二氧化钛、碳纳米管和金属有机框架等纳米材料的合成、表征及其功能性能,以了解它们吸收、催化或分解空气中颗粒物、氮氧化物、二氧化硫和挥发性有机化合物等污染物的能力。实验数据表明,基于二氧化钛的光催化纳米材料在紫外光下对氮氧化物的降解效率超过90%,而氧化石墨烯复合材料因其大表面积对细颗粒物的吸附性能优异(>85%)。氨基功能化金属有机框架在捕获二氧化碳和挥发性有机化合物气体方面表现出卓越的选择性,可将环境浓度降低多达70%。定量生命周期评估表明,将纳米材料纳入城市基础设施(如减少雾霾的涂料和空气过滤系统)中,在保持能源效率的同时,可显著降低与雾霾相关的健康风险。该综述强调了纳米技术在环境修复方面的潜力,这表明基于定量生命周期评估,将纳米材料整合到城市基础设施中可在保持能源效率的同时,将与雾霾相关的健康风险降低30%-50%。