Eine Plattform für die Wissenschaft: Bauingenieurwesen, Architektur und Urbanistik
Mechanistic study of arsenate adsorption on lithium/aluminum layered double hydroxide
AbstractLithium/aluminum layered double hydroxide intercalated by chloride (Li/Al LDH-Cl) was considered as a superior adsorbent for anionic compounds. This study aimed to establish the adsorption behavior of arsenate on Li/Al LDH-Cl by employing X-ray absorption spectroscopy (XAS) and adsorption kinetics. The XAS analysis demonstrated that inner-sphere complexes were the dominant arsenate adsorption configurations on the planar surfaces and edges of Li/Al LDH-Cl. Based on a kinetic study, arsenate adsorption on Li/Al LDH-Cl could be separated into fast and slow reactions. This biphasic arsenate adsorption behavior was partially attributable to: (i) two different adsorption sites associated with Li, exposing on planar surfaces, and Al, existing on the edges of double hydroxyl layers, and (ii) micropore adsorption sites within the Li/Al LDH-Cl surfaces. Activation energies derived by the Arrhenius equation indicated that the diffusion process was the rate-limiting step of arsenate adsorption on Li/Al LDH-Cl.
Mechanistic study of arsenate adsorption on lithium/aluminum layered double hydroxide
AbstractLithium/aluminum layered double hydroxide intercalated by chloride (Li/Al LDH-Cl) was considered as a superior adsorbent for anionic compounds. This study aimed to establish the adsorption behavior of arsenate on Li/Al LDH-Cl by employing X-ray absorption spectroscopy (XAS) and adsorption kinetics. The XAS analysis demonstrated that inner-sphere complexes were the dominant arsenate adsorption configurations on the planar surfaces and edges of Li/Al LDH-Cl. Based on a kinetic study, arsenate adsorption on Li/Al LDH-Cl could be separated into fast and slow reactions. This biphasic arsenate adsorption behavior was partially attributable to: (i) two different adsorption sites associated with Li, exposing on planar surfaces, and Al, existing on the edges of double hydroxyl layers, and (ii) micropore adsorption sites within the Li/Al LDH-Cl surfaces. Activation energies derived by the Arrhenius equation indicated that the diffusion process was the rate-limiting step of arsenate adsorption on Li/Al LDH-Cl.
Mechanistic study of arsenate adsorption on lithium/aluminum layered double hydroxide
Liu, Yu Ting (Autor:in) / Chen, Tsan Yao (Autor:in) / Wang, Ming Kuang (Autor:in) / Huang, Pan Ming (Autor:in) / Chiang, Po Neng (Autor:in) / Lee, Jyh Fu (Autor:in)
Applied Clay Science ; 48 ; 485-491
16.02.2010
7 pages
Aufsatz (Zeitschrift)
Elektronische Ressource
Englisch
Mechanistic study of arsenate adsorption on lithium/aluminum layered double hydroxide
Online Contents | 2010
|Adsorption characteristics of arsenate on colloidal nanosheets of layered double hydroxide
Online Contents | 2016
|Adsorption characteristics of arsenate on colloidal nanosheets of layered double hydroxide
Online Contents | 2016
|Structural characterization of arsenate ion exchanged MgAl-layered double hydroxide
Online Contents | 2009
|