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Synthesis of a novel magnetic Caragana korshinskii biochar/Mg–Al layered double hydroxide composite and its strong adsorption of phosphate in aqueous solutions

机译:新型磁性柠条锦鸡儿生物炭/镁铝层状双氢氧化物复合材料的合成及其对磷酸盐的强吸附

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Phosphate pollution of aquatic ecosystems is of great concern and requires the development of high-performance materials for effective pollution treatment. To realize efficient phosphate removal from aqueous solution, an easily separable magnetic (Fe _(3) O _(4) ) Caragana korshinskii biochar/Mg–Al layered double hydroxide composite (denoted as FCB/MAC) was synthesized via two-step electro-assisted modification for the first time. Subsequently, the physical and chemical properties of FCB/MAC were characterized. Furthermore, the sorption mechanism for phosphate removal was investigated in detail. The results indicated that Fe _(3) O _(4) and the Mg–Al layered double hydroxide were successfully embedded in the biochar matrix. Moreover, FCB/MAC exhibited a high phosphate adsorption capacity and excellent magnetic properties for easy recovery. The maximum phosphate sorption capacity of FCB/MAC was 252.88 mg g ~(?1) , which is much higher than the capacities of most magnetic phosphate adsorbents. In addition, the adsorption kinetics and isotherms indicated that phosphate adsorption by FCB/MAC was controlled by the pseudo-second-order kinetic model and the Langmuir–Freundlich isotherm model. The phosphate adsorption mechanism involves anion exchange, electrostatic attraction, and ligand exchange. After five adsorption–desorption cycles, the phosphate adsorption capacity of FCB/MAC was 25.71 mg g ~(?1) with 51.43% removal efficiency and high recyclability. Thus, the composite prepared in this study is a promising adsorbent for phosphate removal from aqueous solution, and this work provides an excellent reference for constructing novel biochar-based phosphate adsorbents.
机译:水生生态系统的磷酸盐污染倍受关注,需要开发高性能材料以进行有效的污染处理。为了实现从水溶液中有效去除磷酸盐,通过两步电合成了易于分离的磁性(Fe _(3)O _(4))柠条锦鸡儿生物炭/ Mg-Al层状双氢氧化物复合物(表示为FCB / MAC)。首次进行辅助修改。随后,表征了FCB / MAC的物理和化学性质。此外,详细研究了磷酸盐去除的吸附机理。结果表明,Fe _(3)O _(4)和Mg-Al层状双氢氧化物已成功嵌入生物炭基质中。而且,FCB / MAC表现出高的磷酸盐吸附能力和优异的磁性,易于回收。 FCB / MAC的最大磷酸盐吸附容量为252.88 mg g〜(?1),远高于大多数磁性磷酸盐吸附剂的容量。此外,吸附动力学和等温线表明,FCB / MAC对磷酸盐的吸附受拟二级动力学模型和Langmuir-Freundlich等温模型控制。磷酸盐的吸附机理涉及阴离子交换,静电吸引和配体交换。经过五个吸附-解吸循环,FCB / MAC的磷酸盐吸附容量为25.71 mg g〜(?1),去除效率为51.43%,可回收性高。因此,本研究制备的复合材料是一种从水溶液中去除磷酸盐的有前途的吸附剂,这项工作为构建新型基于生物炭的磷酸盐吸附剂提供了极好的参考。

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