6533b858fe1ef96bd12b605e
RESEARCH PRODUCT
Solid-state diffusion phenomena in heterogeneous gas-solid reactions : Application to oxides sulfidation
Kévin Perrinsubject
Dynamique Moléculaire[CHIM.OTHE] Chemical Sciences/OtherZnOPoint defectsDéfauts ponctuelsMolecular dynamics[CHIM.OTHE]Chemical Sciences/OtherSolid-State diffusionDiffusion à l'état solidedescription
Phase transition phenomena involving the mobility of the reaction interface are involved in a wide variety of chemical reactions and applications. A good example is the sulfidation reaction experienced by the metal oxide-based materials used in the framework of gas purification or catalysts preparation applications. These reactions involve solid-state diffusion phenomena of the reactive species (atomic or ionic form) through the layer of product formed during the reaction (oxide, sulfide, or metal phase). In many cases, solid-state diffusion has a direct impact on the reaction mechanisms while determining the growth direction of the formed phases, as well as the overall kinetics of the reactions. This PhD-thesis work aims at providing a better understanding of the solid-state diffusion phenomena of reactive species involved in gas-solid heterogeneous reactions. In particular, the study is focused on zinc oxide sulfidation reaction with H2S, in which the influence of the crystal structure of solids, the presence of impurities and / or native or extrinsic point defects, and the impact of diffusion phenomena on the overall reaction kinetics were evaluated. The research strategy relies on a first experimental approach via the synthesis and characterizations of doped materials, followed by the determination of their sulfidation reaction kinetics by thermogravimetry under reactive atmosphere. The experimental work was combined to a theoretical approach based on Molecular Dynamics, which allows the determination of diffusion coefficients in different systems (ZnO and ZnS), mono/polycrystalline, and with/without presence of doping elements. Knowledge of the diffusion processes and of key parameters involved leads to a better understanding of solid-gas heterogeneous reactions.
| year | journal | country | edition | language |
|---|---|---|---|---|
| 2018-04-06 |