Highly Selective and Efficient Removal of Heavy Metals by Layered Double Hydroxide Intercalated with the MoS Ion.

The MoS ion was intercalated into magnesium-aluminum layered double hydroxide (MgAl--NO-LDH) to produce a single phase material of MgAl(OH)(MoS)·nHO (MgAl--MoS-LDH), which demonstrates highly selective binding and extremely efficient removal of heavy metal ions such as Cu, Pb, Ag, and Hg. The MoS-LD...

Descripción completa

Detalles Bibliográficos
Publicado en:Journal of the American Chemical Society Vol. 138; no. 8; pp. 2858 - 2867
Autores principales: Lijiao Ma, Qing Wang, Islam, Saiful M., Yingchun Liu, Shulan Ma, Kanatzidis, Mercouri G.
Formato: Artículo
Publicado: American Chemical Society 3/2/2016
Materias:
Acceso en línea:Ver este registro en EBSCOhost
Descripción
Sumario:The MoS ion was intercalated into magnesium-aluminum layered double hydroxide (MgAl--NO-LDH) to produce a single phase material of MgAl(OH)(MoS)·nHO (MgAl--MoS-LDH), which demonstrates highly selective binding and extremely efficient removal of heavy metal ions such as Cu, Pb, Ag, and Hg. The MoS-LDH displays a selectivity order of Co, Ni, Zn < Cd ≪ Pb < Cu < Hg < Ag+ for the metal ions. The enormous capacities for Hg (~500 mg/g) and Ag (450 mg/g) and very high distribution coefficients (K) of ~107 mL/g place the MoS-LDH at the top of materials known for such removal. Sorption isotherm for Ag agrees with the Langmuir model suggesting a monolayer adsorption. It can rapidly lower the concentrations of Cu, Pb, Hg, and Ag+ from ppm levels to trace levels of ≤1 ppb. For the highly toxic Hg (at ~30 ppm concentration), the adsorption is exceptionally rapid and highly selective, showing a 97.3% removal within 5 min, 99.7% removal within 30 min, and ~100% removal within 1 h. The sorption kinetics for Cu, Ag+, Pb, and Hg follows a pseudo-second-order model suggesting a chemisorption with the adsorption mechanism via M--S bonding. X-ray diffraction patterns of the samples after adsorption demonstrate the coordination and intercalation structures depending on the metal ions and their concentration. After the capture of heavy metals, the crystallites of the MoS-LDH material retain the original hexagonal prismatic shape and are stable at pH ≈ 2-10. The MoS-LDH material is thus promising for the remediation of heavy metal polluted water.