State Environmental Protection Key Laboratory of Environmental Risk Assessment and Control On Chemical Process, School of Resources and Environmental Engineering, East China University of Science and Technology, 130 Meilong Road, Xuhui District, Shanghai, 200237, China.
Shanghai Environmental Protection Key Laboratory On Environmental Standard and Risk Management of Chemical Pollutants, East China University of Science and Technology, 130 Meilong Road, Xuhui District, Shanghai, 200237, China.
Environ Sci Pollut Res Int. 2023 Jul;30(35):84437-84451. doi: 10.1007/s11356-023-27832-2. Epub 2023 Jun 27.
A novel Fe-Mn binary oxide (FMBO)/bone char composite (FMBC) was synthesized and utilized to simultaneously adsorb Sb(III) and Cd(II) from aqueous phase in this study. The successful loading of Fe-Mn binary oxide on the bone char surface was revealed by the results of scanning electron microscope, X-ray diffraction patterns, and energy dispersive spectroscopy of FMBC. The FMBC exhibited remarkable ability of simultaneous removing Sb(III) and Cd(II) from aqueous, and the presence of Cd(II) enhanced Langmuir theoretical maximum adsorption capacity for Sb(III) significantly from 67.8 to 209.0 mg/g. Besides, FMBC could efficiently remove Sb(III) and Cd(II) in the wide initial pH range of 2-7. The influences of ionic strength, co-existing anions, humic acid, and temperature on the adsorption of Sb(III) and Cd(II), and the application potential of FMBC in actual groundwater were investigated. The main mechanisms of Sb(III) and Cd(II) adsorption onto FMBC involved redox, electrostatic interaction, surface complexation, ion exchange, and precipitation. The result of X-ray photoelectron spectroscopy and mapping spectrum analysis revealed that Mn(III) on FMBC played the key role in the Sb(III) oxidation, while FeOOH worked as the adsorption sites of FMBC. Meanwhile, the hydroxyapatite on FMBC also contributed to the removal of Cd(II). The presence of Cd(II) not only increased the positive charge on the surface of FMBC but also formed the Fe-Sb-Cd ternary complex, promoting the removal of Sb. This work provides valuable information for the application of FMBO/bone char as a cost-effective adsorbent to remediate co-pollution of Sb(III) and Cd(II) in aqueous environment.
本研究合成了一种新型的 Fe-Mn 二元氧化物(FMBO)/骨炭复合材料(FMBC),用于同时从水相中吸附 Sb(III) 和 Cd(II)。扫描电子显微镜、X 射线衍射图谱和 FMBC 的能谱分析结果表明,Fe-Mn 二元氧化物成功负载在骨炭表面。FMBC 表现出显著的同时从水相中去除 Sb(III) 和 Cd(II)的能力,并且 Cd(II) 的存在显著提高了 Langmuir 理论最大吸附 Sb(III)的容量,从 67.8 增加到 209.0 mg/g。此外,FMBC 可以在 pH 值为 2-7 的宽初始范围内有效地去除 Sb(III)和 Cd(II)。考察了离子强度、共存阴离子、腐殖酸和温度对 Sb(III)和 Cd(II)吸附的影响,以及 FMBC 在实际地下水应用中的潜力。Sb(III)和 Cd(II)吸附到 FMBC 的主要机制包括氧化还原、静电相互作用、表面络合、离子交换和沉淀。X 射线光电子能谱和图谱分析的结果表明,FMBC 上的 Mn(III)在 Sb(III)氧化中起关键作用,而 FeOOH 则作为 FMBC 的吸附位点。同时,FMBC 上的羟基磷灰石也有助于去除 Cd(II)。Cd(II)的存在不仅增加了 FMBC 表面的正电荷,还形成了 Fe-Sb-Cd 三元配合物,促进了 Sb 的去除。这项工作为 FMBO/骨炭作为一种经济有效的吸附剂应用于修复 Sb(III)和 Cd(II)在水环境中的共污染提供了有价值的信息。