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Évaluation expérimentale de l'efficacité des gants de protection contre les nanoparticules de dioxyde de titane dans des conditions de travail

  • Ludwig Vinches

Student thesis: Doctoral thesisDoctorate in Engineering: Engineering

Abstract

Manufactured titanium dioxide nanoparticles (nTiO2) enter into the formulation of several commercial products including cosmetics, paints, varnishes or food. An increasing number of people will be exposed to nanoparticles (NP), in particular, scientists during their research and workers in companies. As such, they are an emerging source of hazard. Indeed, an increasing number of studies are warning against their likely harmful effects on health. The International Agency for Research against Cancer has classified nTiO2 as being possibly carcinogenic to humans. Furthermore some studies have shown that the skin is not an impervious membrane to the NP and that NP penetration is possible when the skin is injured by abrasion, after repeated flexions or even intact. Therefore, dermal protection will be necessary in order to thoroughly protect NP users. Based upon the precautionary principle, gloves should be used as protection against chemicals. However, to the best of our knowledge, no study on their resistance towards NP has been conducted. In this study, the performance of protective gloves was evaluated with respect to nTiO2 solutions and powders, under conditions simulating occupational use. Mechanical deformations, simulating those produced by hand flexing, were applied to nitrile and butyl rubber and latex samples that were in contact with nTiO2 in water, in propylene glycol or in powder form. nTiO2 penetration through the protective gloves was determined after deformations of the materials. Following these results, the physicochemical and mechanical phenomena that facilitate the penetration of nTiO2 were identified and studied. It was shown that mechanical deformations caused both damage to the sample surface but also a change in the degree of crystallinity of the glove material. Strain energy was also measured. It decreased significantly in presence and absence of nTiO2, indicating a weakening of the polymer chains. A qualitative study showed that repetitive deformations also lead to a decrease in the size of the agglomerates that were contained in the nTiO2 powder. Glove materials that were in contact with colloidal solutions produced a swelling phenomenon. Finally, measurements of the elongation of glove samples immersed in colloidal solutions were used to determine diffusion coefficients across the materials. The transport of the nanoparticles was driven by that of the carrier liquid (water or propylene glycol). Given the carrier solutions and nanoparticles could be transported through the gloves, exposure to skin could occur.
Date7 Aug 2013
Original languageFrench
Awarding Institution
  • École de technologie supérieure
SupervisorStéphane Hallé (Supervisor) & Kevin James Wilkinson (Co-supervisor)

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