TY - JOUR
T1 - Surface complexation modeling of the effects of dissolved inorganic carbon on adsorption of U(VI) onto Fe3O4 nanoparticles coated with lignite humic acid
AU - Zhang, Yangyang
AU - Fein, Jeremy B.
AU - Yu, Qiang
AU - Liu, Dongsheng
AU - Feng, Yuzhao
AU - Zu, Bo
AU - Zheng, Chunli
N1 - Publisher Copyright:
© 2021 Elsevier B.V.
PY - 2021/11/20
Y1 - 2021/11/20
N2 - Lignite humic acid (LHA) surface-functionalized magnetite nanoparticles (NPs) represent a promising sorbent for removal of U(VI) from industrial waste streams and contaminated environmental waters, but the effects of dissolved inorganic carbon (DIC) on the adsorption mechanisms and efficiency are poorly constrained. We measured the adsorption of U(VI) onto LHA-coated Fe3O4 NPs as a function of pH, ionic strength, adsorbent concentration, DIC concentration and dissolved calcium concentration. The observed U(VI) adsorption onto LHA-coated Fe3O4 NPs is ionic strength independent, and below pH 5, the extent of U(VI) adsorption increases with increasing pH and adsorbent concentration. The extent of U(VI) adsorption decreases dramatically with increasing concentration of added NaHCO3 and CaCl2 above pH 5 and pH 6 respectively. The adsorption data were modeled using a non-electrostatic surface complexation modeling approach to determine the identities and thermodynamic stabilities of possible uranyl complexes on the LHA-coated Fe3O4 NP surfaces. The modeling results indicate that L1-(UO2)+, >L2-UO2(OH), >L2-(UO2)3(OH)5, >L2-UO2(CO3)-, >L3-(UO2)2(CO3)(OH)32-, >L4-UO2(CO3)23- and >L4-(UO2)3(OH)72- are involved in the adsorption under different pH (3.0–9.5) and DIC (0–25 mM) concentration conditions. The log stability constant values (±2σ) of these uranyl surface complexes are calculated as 4.59(±0.12), 6.59(±0.14), 6.33(±0.13), 6.08(±0.18), 6.16(±0.06), 7.07(±0.19) and6.13(±0.15). The model can be applied to predict the distribution of U(VI) in complex LHA-coated Fe3O4 NP-bearing systems under a wide range of pH, ionic strength, DIC, and solute: sorbent conditions.
AB - Lignite humic acid (LHA) surface-functionalized magnetite nanoparticles (NPs) represent a promising sorbent for removal of U(VI) from industrial waste streams and contaminated environmental waters, but the effects of dissolved inorganic carbon (DIC) on the adsorption mechanisms and efficiency are poorly constrained. We measured the adsorption of U(VI) onto LHA-coated Fe3O4 NPs as a function of pH, ionic strength, adsorbent concentration, DIC concentration and dissolved calcium concentration. The observed U(VI) adsorption onto LHA-coated Fe3O4 NPs is ionic strength independent, and below pH 5, the extent of U(VI) adsorption increases with increasing pH and adsorbent concentration. The extent of U(VI) adsorption decreases dramatically with increasing concentration of added NaHCO3 and CaCl2 above pH 5 and pH 6 respectively. The adsorption data were modeled using a non-electrostatic surface complexation modeling approach to determine the identities and thermodynamic stabilities of possible uranyl complexes on the LHA-coated Fe3O4 NP surfaces. The modeling results indicate that L1-(UO2)+, >L2-UO2(OH), >L2-(UO2)3(OH)5, >L2-UO2(CO3)-, >L3-(UO2)2(CO3)(OH)32-, >L4-UO2(CO3)23- and >L4-(UO2)3(OH)72- are involved in the adsorption under different pH (3.0–9.5) and DIC (0–25 mM) concentration conditions. The log stability constant values (±2σ) of these uranyl surface complexes are calculated as 4.59(±0.12), 6.59(±0.14), 6.33(±0.13), 6.08(±0.18), 6.16(±0.06), 7.07(±0.19) and6.13(±0.15). The model can be applied to predict the distribution of U(VI) in complex LHA-coated Fe3O4 NP-bearing systems under a wide range of pH, ionic strength, DIC, and solute: sorbent conditions.
KW - Adsorption
KW - Dissolved inorganic carbon
KW - Lignite humic acid
KW - Surface complexation modeling
KW - Uranium
UR - https://www.scopus.com/pages/publications/85115012741
U2 - 10.1016/j.colsurfa.2021.127260
DO - 10.1016/j.colsurfa.2021.127260
M3 - 文章
AN - SCOPUS:85115012741
SN - 0927-7757
VL - 629
JO - Colloids and Surfaces A: Physicochemical and Engineering Aspects
JF - Colloids and Surfaces A: Physicochemical and Engineering Aspects
M1 - 127260
ER -