4.7 Article

Electric charge of atmospheric nanoparticles and its potential implications with human health

期刊

SCIENCE OF THE TOTAL ENVIRONMENT
卷 808, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.scitotenv.2021.152106

关键词

Air pollution; Aerosols; ELPI (R); Nanoparticle charge; Human health; Deposition model

资金

  1. COST-Action [15211]
  2. Spanish National Research Agency [B487 (CSO2016.75154-R)]

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This research presents a pilot project conducted in Santander, Spain to measure atmospheric nanoparticles, focusing on their deposition in the human respiratory tract model. The study found that the electric charge of nanoparticles may play a key role in explaining their deposition in the respiratory system and could have potential impacts on human health.
This research presents a pilot project developed within the framework of the COST Action 15,211 in which atmospheric nanoparticles were measured in July 2018, in a maritime environment in the city of Santander in Northern Spain. ELPI (R) + (Electrical low-Pressure Impactor) was used to measure nanoparticle properties (electric charge, number, size distribution and surface area) from 6 nm to 10,000 nm with 14 size channels. This study focused on the range between 6 and 380 nm. It considered atmospheric nanoparticle electric charge with surface area, deposited and number by size distribution at human respiratory tract regions in a standard person in Santander according to the human respiratory tract model of ICRP 94. An empirical distribution of nanoparticles deposited in the human respiratory tract model and its electric charge is presented for the city of Santander as the main output. Percentages of total and regional deposition in human respiratory tract model were calculated for the Atlantic climate. Nanoparticles have shown an alveolar surface area deposition plateau with a size distribution range between 6 nm to 150 nm. Negative charge of nanoparticles was clearly associated with primary atmospheric nanoparticles being mainly deposited in the alveolar region where a Brownian mechanism of deposition is predominant. We can demonstrate that electric charge may be a key element in explaining Brownian deposition of the smallest particles in the human respiratory tract and that it can be linked to theoretical positive and negative impacts on human health according to several biometeorological studies. To support our analysis, aerosol samples were characterized with transmission electron microscopy and Confocal Raman spectrometer to determinate morphology, size, chemical composition, and structure. The toxicological effects of the samples with the alveolar surface area had a greater deposition, remain to be studied.

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