4.7 Article

Adsorption of hydrated Al3+ on the kaolinite (001) surface: A density functional theory study

期刊

APPLIED CLAY SCIENCE
卷 223, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.clay.2022.106498

关键词

Ionic rare earth ore; Kaolinite; Adsorption; Al3+; Density Functional Theory

资金

  1. National Natural Science Foundation of China [52004107]
  2. Jiangxi Province Key R&D Program, China [20212BBG73049]
  3. National Key R&D Program of China [2019YFC0605002]
  4. Scientific Research Project of Jiangxi Education Department, China [GJJ190486]

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This study investigated the adsorption behavior of hydrated aluminum ions (Al3+) on kaolinite surface using density functional theory and molecular dynamics simulation. The results showed that hydrated aluminum ions preferentially form stable bidentate adsorption complexes on the kaolinite surface, and the Al-Os bond exhibits strong ionicity and bond filling characteristics.
In order to reveal the microscopic occurrence of Al3+ impurity in ionic rare earth ore on kaolinite surface, density functional theory (DFT) was used to construct the stable hydrate model of Al3+ in the water system. The structure and bonding mechanism of the complexes of outer layer adsorption and inner layer (monodentate/bidentate) adsorption of hydrate Al3+ on kaolinite (001) surface were studied. The DFT simulation results were verified by molecular dynamics (MD) stimulation and adsorption experiments. The results showed that the stable hydrate form of Al3+ is [Al(H2O)(6)](3+). When hydrated Al3+ is adsorbed on the outer layer of the kaolinite (001) surface, Al3+ is more inclined to be adsorbed on the Si-O surface. When hydrated Al3+ is adsorbed on the inner layer of the kaolinite (001) surface, Al tends to form a bond with Ou atoms formed by the deprotonation of the upright hydroxyl group on the surface to form monodentate adsorption complexes, and maintains coordination with the surrounding 5 H2O; Al tends to form bonds with the Ou and Ol atoms formed by the deprotonation of the upright and lying hydroxyl groups on the surface to form bidentate adsorption complexes, due to steric hindrance effect, Al only maintains coordination with the surrounding 3 H2O. The MD simulation results verified the rationality of the adsorption configuration calculated by DFT. Combined with Mulliken population, charge density and partial density of state (PDOS) analysis, it is shown that the Al-Os bond in the monodentate/ bidentate adsorption complex of hydrated Al3+ has the characteristics of strong ionicity and strong bond filling. The hydrated Al3+ preferentially forms a more stable bidentate adsorption complex on kaolinite surface. Both the calculation of adsorption energy and the results of adsorption experiments support this conclusion.

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