Identifying the reactive sites of hydrogen peroxide decomposition and hydroxyl radical formation on chrysotile asbestos surfaces

Publication date

2020

Authors

Walter, Martin
Schenkeveld, W.D.C.ISNI 0000000507309876
Geroldinger, Gerald
Gille, Lars
Reissner, Michael
Kraemer, Stephan M.

Editors

Advisors

Supervisors

Document Type

Article
Open Access logo

License

Abstract

Fibrous chrysotile has been the most commonly applied asbestos mineral in a range of technical applications. However, it is toxic and carcinogenic upon inhalation. The chemical reactivity of chrysotile fiber surfaces contributes to its adverse health effects by catalyzing the formation of highly reactive hydroxyl radicals (HO•) from H2O2. In this Haber-Weiss cycle, Fe on the fiber surface acts as a catalyst: Fe3+ decomposes H2O2 to reductants that reduce surface Fe3+ to Fe2+, which is back-oxidized by H2O2 (Fenton-oxidation) to yield HO•. Chrysotile contains three structural Fe species: ferrous and ferric octahedral Fe and ferric tetrahedral Fe (Fe3+tet). Also, external Fe may adsorb or precipitate onto fiber surfaces. The goal of this study was to identify the Fe species on chrysotile surfaces that catalyze H2O2 decomposition and HO• generation.

Keywords

Asbestos, Chrysotile, Haber-Weiss, Hydroxyl radical, Fenton, Tetrahedral iron, Mossbauer, EPR

Citation

Walter, M, Schenkeveld, W D C, Geroldinger, G, Gille, L, Reissner, M & Kraemer, S M 2020, 'Identifying the reactive sites of hydrogen peroxide decomposition and hydroxyl radical formation on chrysotile asbestos surfaces', Particle and Fibre Toxicology, vol. 17, no. 1, 3. https://doi.org/10.1186/s12989-019-0333-1