The University of Texas Pan-American, Department of Chemistry, Edinburg, TX 78539, United States.
J Colloid Interface Sci. 2013 Jun 15;400:97-103. doi: 10.1016/j.jcis.2013.02.036. Epub 2013 Mar 13.
Removal of chromium(III) or (VI) from aqueous solution was achieved using Fe3O4, and MnFe2O4 nanomaterials. The nanomaterials were synthesized using a precipitation method and characterized using XRD. The size of the nanomaterials was determined to be 22.4±0.9 nm (Fe3O4) and 15.5±0.5 nm (MnFe2O4). The optimal binding pH for chromium(III) and chromium(VI) were pH 6 and pH 3. Isotherm studies were performed, under light and dark conditions, to determine the capacity of the nanomaterials. The capacities for the light studies with MnFe2O4 and Fe3O4 were determined to be 7.189 and 10.63 mg/g, respectively, for chromium(III). The capacities for the light studies with MnFe2O4 and Fe3O4 were 3.21 and 3.46 mg/g, respectively, for chromium(VI). Under dark reaction conditions the binding of chromium(III) to the MnFe2O4 and Fe3O4 nanomaterials were 5.74 and 15.9 mg/g, respectively. The binding capacity for the binding of chromium(VI) to MnFe2O4 and Fe3O4 under dark reaction conditions were 3.87 and 8.54 mg/g, respectively. The thermodynamics for the reactions showed negative ΔG values, and positive ΔH values. The ΔS values were positive for the binding of chromium(III) and for chromium(VI) binding under dark reaction conditions. The ΔS values for chromium(VI) binding under the light reaction conditions were determined to be negative.
使用 Fe3O4 和 MnFe2O4 纳米材料从水溶液中去除铬(III)或(VI)。纳米材料是通过沉淀法合成的,并通过 XRD 进行了表征。纳米材料的尺寸确定为 22.4±0.9nm(Fe3O4)和 15.5±0.5nm(MnFe2O4)。铬(III)和铬(VI)的最佳结合 pH 值分别为 pH 6 和 pH 3。在光照和黑暗条件下进行了等温线研究,以确定纳米材料的容量。MnFe2O4 和 Fe3O4 光研究的容量分别确定为铬(III)的 7.189 和 10.63mg/g。MnFe2O4 和 Fe3O4 光研究的容量分别为铬(VI)的 3.21 和 3.46mg/g。在黑暗反应条件下,MnFe2O4 和 Fe3O4 对铬(III)的结合量分别为 5.74 和 15.9mg/g。在黑暗反应条件下,MnFe2O4 和 Fe3O4 对铬(VI)的结合容量分别为 3.87 和 8.54mg/g。反应的热力学表明 ΔG 值为负,ΔH 值为正。对于黑暗反应条件下铬(III)和铬(VI)的结合,ΔS 值为正。对于光照反应条件下铬(VI)的结合,ΔS 值为负。