薄雾
气溶胶
烟火
粒子(生态学)
超细粒子
环境科学
烟火
环境化学
微粒
粒径
单粒子分析
微塑料
示踪剂
大气科学
亚洲尘埃
材料科学
矿物学
纳米颗粒
透射电子显微镜
空中传输
环境工程
污染
粒度分布
化学
生物量(生态学)
空气污染
扫描流动性粒度仪
人类健康
气象学
粒子数
作者
Linlin Liu,Weijun Li,Shanshan Tang,Mohammed S. Alam,Leigh R. Crilley,Deepchandra Srivastava,Mukesh Khare,Natália Cestari Moreno,William J. Bloss,Zongbo Shi
标识
DOI:10.1021/acs.est.5c16031
摘要
Delhi, one of the world's most densely populated megacities, experiences extreme haze during the Diwali Festival─a nationwide celebration marked by intense fireworks coinciding with postmonsoon biomass burning. Although bulk measurements routinely show sharp PM2.5 spikes during Diwali, direct microscopic evidence linking specific aerosol types to these concurrent sources remains limited. Here, we combined transmission electron microscopy (TEM) with bulk chemical analysis to identify particle types and track their physicochemical evolution throughout the Diwali period. Before Diwali, aerosols were dominated by potassium (K)-rich particles (25%), carbonaceous particles (primary organic aerosol (POA) and soot, 29%), and their internal mixtures (K-POA/soot, 37%), with frequent spherical POA (i.e., tar balls), indicating a strong biomass-burning influence. During Diwali, particle populations shifted abruptly to a pyrotechnic signature of fireworks, characterized by abundant Al2O3 monomers (30-300 nm) and their agglomerates, either as bare (36-40%) or uniformly coated by K2SO4 (Al2O3-K, 46-47%). After Diwali, ultrafine Al2O3 particles (<100 nm) persisted and underwent coagulation with aged biomass-burning particles, forming distinctive Al2O3-K-POA/soot internal mixtures. Therefore, Al2O3 nanoparticles can serve as a tracer of fireworks and were further internally mixed with carbonaceous particles derived from biomass burning during severe haze events of Diwali. These metal-containing particles warrant particular attention because of their potential toxicity and adverse respiratory health effects in the densely populated megacity.
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