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In Situ Synthesis of a Stable Fe3O4@Cellulose Nanocomposite for Efficient Catalytic Degradation of Methylene Blue

机译:原位合成稳定的Fe3O4 @纤维素纳米复合材料用于亚甲基蓝的高效催化降解

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摘要

To rapidly obtain a stable Fe3O4@cellulose heterogeneous Fenton catalyst, a novel in situ chemical co-precipitation method was developed. Compared with mechanical activation (MA)-pretreated cellulose (MAC), MA + FeCl3 (MAFC)-pretreated cellulose (MAFCC) was more easily dissolved and uniformly distributed in NaOH/urea solvent. MAFCC and MAC solutions were used as precipitators to prepare Fe3O4@MAFCC and Fe3O4@MAC nanocomposites, respectively. MAFCC showed stronger interaction and more uniform combination with Fe3O4 nanoparticles than MAC, implying that MAFC pretreatment enhanced the accessibility, reactivity, and dissolving capacity of cellulose thus, provided reactive sites for the in situ growth of Fe3O4 nanoparticles on the regenerated cellulose. Additionally, the catalytic performance of Fe3O4@MAFCC nanocomposite was evaluated by using for catalytic degradation of methylene blue (MB), and Fe3O4@MAC nanocomposite and Fe3O4 nanoparticles were used for comparative studies. Fe3O4@MAFCC nanocomposite exhibited superior catalytic activity for the degradation and mineralization of MB in practical applications. After ten cycles, the structure of Fe3O4@MAFCC nanocomposite was not significantly changed owing to the strong interaction between MAFCC and Fe3O4 nanoparticles. This study provides a green pathway to the fabrication of a stable nanocomposite catalyst with high catalytic performance and reusability for the degradation of organic pollutants.
机译:为了快速获得稳定的Fe3O4 @纤维素非均相Fenton催化剂,开发了一种新颖的原位化学共沉淀方法。与机械活化(MA)预处理的纤维素(MAC)相比,MA + FeCl3(MAFC)预处理的纤维素(MAFCC)更易于溶解并均匀分布在NaOH /脲溶剂中。 MAFCC和MAC溶液被用作沉淀剂,分别制备Fe3O4 @ MAFCC和Fe3O4 @ MAC纳米复合材料。 MAFCC比MAC表现出更强的相互作用和与Fe3O4纳米粒子的更均匀结合,这意味着MAFC预处理提高了纤维素的可及性,反应性和溶解能力,从而为Fe3O4纳米粒子在再生纤维素上的原位生长提供了反应位点。此外,通过对亚甲基蓝(MB)的催化降解,评价了Fe3O4 @ MAFCC纳米复合材料的催化性能,并将Fe3O4 @ MAC纳米复合材料和Fe3O 4 纳米颗粒用于对比研究。 Fe 3 O 4 @MAFCC纳米复合材料在实际应用中对MB的降解和矿化具有优异的催化活性。经过十个循环,由于MAFCC与Fe 3 O之间的强相互作用,Fe 3 O 4 @MAFCC纳米复合材料的结构没有明显改变。 4 纳米粒子。这项研究为稳定的纳米复合催化剂的制备提供了一条绿色途径,该催化剂具有高催化性能和可降解有机污染物的可重复使用性。

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