Characterizing the Chemical Profile of Incidental Ultrafine Particles for Toxicity Assessment Using an Aerosol Concentrator

Author:

Viana M1ORCID,Salmatonidis A1,Bezantakos S2,Ribalta C1,Moreno N1ORCID,Córdoba P1,Cassee F R3,Boere J3,Fraga S45,Teixeira J P45,Bessa M J45,Monfort E6

Affiliation:

1. IDAEA-CSIC, Barcelona, Spain

2. Université du Littoral Côte d’ ‘Opale, Dunkerque, France

3. RIVM, Bilthoven, The Netherlands

4. Department of Environmental Health, National Institute of Health Dr Ricardo Jorge, Porto, Portugal

5. EPIUnit-Instituto de Saúde Pública, Universidade do Porto, Porto, Portugal

6. ITC, Castellón, Spain

Abstract

Abstract Incidental ultrafine particles (UFPs) constitute a key pollutant in industrial workplaces. However, characterizing their chemical properties for exposure and toxicity assessments still remains a challenge. In this work, the performance of an aerosol concentrator (Versatile Aerosol Concentration Enrichment System, VACES) was assessed to simultaneously sample UFPs on filter substrates (for chemical analysis) and as liquid suspensions (for toxicity assessment), in a high UFP concentration scenario. An industrial case study was selected where metal-containing UFPs were emitted during thermal spraying of ceramic coatings. Results evidenced the comparability of the VACES system with online monitors in terms of UFP particle mass (for concentrations up to 95 µg UFP/m3) and between filters and liquid suspensions, in terms of particle composition (for concentrations up to 1000 µg/m3). This supports the applicability of this tool for UFP collection in view of chemical and toxicological characterization for incidental UFPs. In the industrial setting evaluated, results showed that the spraying temperature was a driver of fractionation of metals between UF (<0.2 µm) and fine (0.2–2.5 µm) particles. Potentially health hazardous metals (Ni, Cr) were enriched in UFPs and depleted in the fine particle fraction. Metals vaporized at high temperatures and concentrated in the UF fraction through nucleation processes. Results evidenced the need to understand incidental particle formation mechanisms due to their direct implications on particle composition and, thus, exposure. It is advisable that personal exposure and subsequent risk assessments in occupational settings should include dedicated metrics to monitor UFPs (especially, incidental).

Funder

SIINN ERA-NET

Spanish MINECO

Region Hauts de France

Spanish Ministry of Science and Innovation

Generalitat de Catalunya

Institute of Environmental Assessment and Water Research

CSIC Open Access Publication Support Initiative

Unit of Information Resources for Research

Publisher

Oxford University Press (OUP)

Subject

Public Health, Environmental and Occupational Health

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