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Adsorption of industrial Acid Red 114 onto Fe_3O_4@Histidine magnetic nanocomposite

机译:工业酸性红114在Fe_3O_4 @组氨酸磁性纳米复合材料上的吸附

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Fe3O4@ Histidine (Fe3O4@ His) magnetic nanocomposite (MNCs) was successfully prepared by simple thermal decomposition method. The final obtained products were characterized by X-ray diffraction (XRD), Fourier transform infrared (FT-IR), thermogravimetric analysis, scanning electron microscope (SEM), and transmission electron microscopy (TEM). Powder XRD analysis confirmed the single phase of Fe3O4 spinel structure. SEM and TEM analysis indicated that Fe3O4@ His MNCs were nanoparticles-like structure with small agglomeration. FT-IR results revealed that L-histidine made a bond through its COO-group with Fe3O4 Nanoparticles (NPs). There is electrostatic attraction between cationic NH2 group (NH3+) of Fe3O4@ His MNCs and anionic dye. The Fe3O4@ His MNC has much higher adsorbed amount of Acid Red 114 (AR114) than the Fe3O4 NPs at pH 5 and 8. At pH -5 on the nanoparticle surface via ammonium groups. Thermal analysis showed the decomposition of the L-histidine capping. The hysteresis (sigma-H) curves revealed Fe3O4@ His MNC exhibit a typical super paramagnetic characteristic with a saturation magnetization of 45.5 emu/g. The adsorption capacity of low-cost and eco-friendly adsorbents Fe3O4@ His nanocomposite for removal of industrial AR114 from wastewater was investigated. Therefore, pH of 5 and contact time of 120 min were found to be optimum for maximum removal of AR114 by Fe3O4@ His MNCs. The experimental data of adsorption obey Langmuir isotherm and pseudo-second-order kinetic. The maximum adsorption capacity of the Fe3O4@ His MNC for AR114 was 140.8 mg/g at pH 5. The reusability of the Fe3O4@ His MNCs was also done, and significant removal of AR114 obtained even after five cycles. Thus, Fe3O4@ His MNCs considered as a good stability and reusability absorbent for the removal of industrial AR114.
机译:通过简单的热分解方法成功制备了Fe3O4 @组氨酸(Fe3O4 @ His)磁性纳米复合材料。通过X射线衍射(XRD),傅立叶变换红外(FT-IR),热重分析,扫描电子显微镜(SEM)和透射电子显微镜(TEM)对最终获得的产物进行表征。粉末XRD分析证实了Fe3O4尖晶石结构的单相。 SEM和TEM分析表明,Fe3O4 @ His的MNC为纳米颗粒状结构,团聚程度较小。 FT-IR结果表明,L-组氨酸通过其COO基团与Fe3O4纳米颗粒(NPs)形成键。 Fe3O4 @ His MNCs的阳离子NH2(NH3 +)与阴离子染料之间存在静电吸引。 Fe3O4 @ His MNC在pH 5和8时比Fe3O4 NPs吸附的酸性红114(AR114)高得多。在pH -5处通过铵基在纳米颗粒表面上。热分析显示L-组氨酸封端的分解。磁滞曲线(sigma-H)显示Fe3O4 @ His MNC具有典型的超顺磁特性,饱和磁化强度为45.5 emu / g。研究了低成本,环保型吸附剂Fe3O4 @ His纳米复合材料对废水中工业AR114的吸附能力。因此,发现pH 5和接触时间120分钟对于Fe3O4 @ His MNC最大限度地去除AR114是最佳的。吸附服从朗缪尔等温线和拟二级动力学的实验数据。 pH值为5时,Fe3O4 @ His MNC对AR114的最大吸附容量为140.8 mg /g。Fe3O4@ His MNCs也具有可重复使用性,即使在五个循环后仍能明显去除AR114。因此,Fe3O4 @他的MNC被认为是用于去除工业AR114的良好稳定性和可重复使用性的吸收剂。

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