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Fe-Mn-Ce oxide-modified biochar composites as efficient adsorbents for removing As(III) from water: adsorption performance and mechanisms

机译:Fe-Mn-Ce氧化物改性的生物炭复合材料是用于从水中除去(III)的有效吸附剂:吸附性能和机制

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摘要

In this study, a novel Fe-Mn-Ce oxide-modified biochar composite (FMCBC) was synthesized via pyrolysis to enhance the adsorption capacity of biochar (BC). Scanning electron microscopy-energy-dispersive X-ray spectroscopy confirmed that Fe, Mn, and Ce were successfully loaded onto the surface of the BC. A series of adsorption experiments showed that the FMCBC exhibited improved adsorption of As(III) in an aqueous environment. The adsorption process was well expressed by the pseudo-second-order kinetic model. The adsorption capacity of FMCBC reached 8.74mgL(-1), which was 3.27 times greater than that of BC. The pH of the solution significantly influenced the adsorption of As(III), where the amount of As(III) adsorbed by FMCBC was maximized at pH 3. A high phosphate concentration inhibited adsorption, whereas nitrate and sulfate ions promoted As(III) adsorption and increased the FMCBC adsorption capacity. Similarly, with increasing humic acid concentration, the adsorption capacity of FMCBC for As(III) decreased; however, a low concentration of humic acid promoted adsorption. X-ray photoelectron spectroscopy analysis revealed that the adsorption of As(III) by FMCBC occurred through redox and surface complexation reactions. Therefore, FMCBC has excellent potential for purifying arsenic-contaminated water.
机译:在该研究中,通过热解合成了一种新型Fe-Mn-Ce氧化物改性的生物炭复合物(FMCBC),以增强Biochar(BC)的吸附能力。扫描电子显微镜 - 能量分散X射线光谱证实,Fe,Mn和Ce成功地装载到BC的表面上。一系列吸附实验表明,FMCBC在水性环境中表现出改善As(III)的吸附。吸附过程由伪二阶动力学模型良好表达。 FMCBC的吸附容量达到8.74mg1(-1),比BC的3.27倍。溶液的pH值显着影响了As(III)的吸附,其中由FMCBC吸附的(III)的量在pH3中最大化。高磷酸盐浓度抑制吸附,而硝酸盐和硫酸盐离子促进为(III)吸附并增加了FMCBC吸附能力。类似地,随着腐殖酸浓度的增加,FMCBC的吸附容量为(III)降低;然而,低浓度的腐殖酸促进了吸附。 X射线光电子体光谱分析显示,通过氧化还原和表面络合反应发生FMCBC的As(III)的吸附。因此,FMCBC具有纯化砷污染水的优异潜力。

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