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Perrine Chaurand

Researcher at Aix-Marseille University

Publications -  78
Citations -  3699

Perrine Chaurand is an academic researcher from Aix-Marseille University. The author has contributed to research in topics: Leaching (metallurgy) & Slag. The author has an hindex of 31, co-authored 74 publications receiving 3093 citations. Previous affiliations of Perrine Chaurand include Duke University & Université Paul Cézanne Aix-Marseille III.

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Effect of silicon on wheat seedlings (Triticum turgidum L.) grown in hydroponics and exposed to 0 to 30 µM Cu

TL;DR: Evidence is provided for Si-mediated alleviation of Cu toxicity in durum wheat and that Si supplementation to plants exposed to increasing levels of Cu in solution induces non-simultaneous changes in physiological parameters.
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Environmental impacts of steel slag reused in road construction: a crystallographic and molecular (XANES) approach.

TL;DR: X-ray absorption near-edge structure (XANES) spectroscopy indicates that Cr is present in the less mobile and less toxic trivalent form and that its speciation does not evolve during leaching.
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Concurrent aggregation and deposition of TiO2 nanoparticles in a sandy porous media.

TL;DR: It is shown that nanoscale particle dimensions may favor aggregation kinetics, thus altering the transport and retention of these materials in saturated porous media.
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Structural Degradation at the Surface of a TiO2-Based Nanomaterial Used in Cosmetics

TL;DR: A hydrophobic TiO(2) nanoparticle-based formulation used in cosmetics: T-Lite SF is focused here on, which protects from the production of superoxide ions from the photoactive/phototoxic TiO (2) core in experimental conditions.
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Enhanced Adsorption of Arsenic onto Maghemites Nanoparticles: As(III) as a Probe of the Surface Structure and Heterogeneity

TL;DR: When normalized per unit of surface area, the quantity of arsenic adsorbed at the maghemite surface remains constant for particles between 300 and 20 nm, however, nanoparticles smaller than 20 nm exhibit enhanced adsorption capacity.