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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Functionalization of graphite oxide with magnetic chitosan for the preparation of a nanocomposite dye adsorbent
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Functionalization of graphite oxide with magnetic chitosan for the preparation of a nanocomposite dye adsorbent

机译:磁性壳聚糖对氧化石墨的功能化,用于制备纳米复合染料吸附剂

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In the current study, the functionalization of graphite oxide (GO) with magnetic chitosan (Chm) was investigated to prepare a nanocomposite material (GO-Chm) for the adsorption of a reactive dye (Reactive Black 5). The synthesis mechanism was investigated by various techniques (SEM/EDAX, FTIR spectroscopy, XRD, XPS, DTA, DTG, VSM). Characterization results indicated that a significant fraction of the amines of the chitosan (i) were inserted between the GO layers and (ii) reacted with carboxyl and epoxy groups of GO, leading to its reduction and hence the destruction of the layered structure. The concentrations of iron were found to be ~25% for Chm and ~12% for GO-Chm. A VSM plot presents the value of 9 emu/g for the saturation magnetization of GO-Chm. The adsorption behavior of the prepared composite was elucidated with a series of experiments. The tests of the effects of pH revealed that the adsorption mechanism dominated (between dye molecules and the GO-Chm matrix) and showed that acidic conditions were the optimum for the adsorption process (pH 3). Kinetic experiments presented the relatively "fast" adsorption phenomenon using pseudo-first-order, pseudo-second-order, and modified pseudo-second-order equations. The equilibrium data were fitted to the Langmuir, Freundlich, and Langmuir-Freundlich (L-F) models, calculating the maximum adsorption capacities at 25, 45, and 65 °C (391, 401, and 425 mg/g, respectively). Thermodynamic analysis was also performed to calculate the changes in free energy (ΔG~0), enthalpy (ΔH~0), and entropy (ΔS~0).
机译:在当前的研究中,研究了利用磁性壳聚糖(Chm)将氧化石墨(GO)官能化以制备用于吸附活性染料(活性黑5)的纳米复合材料(GO-Chm)。通过各种技术(SEM / EDAX,FTIR光谱,XRD,XPS,DTA,DTG,VSM)研究了合成机理。表征结果表明,壳聚糖的大部分胺(i)插入了GO层之间,并且(ii)与GO的羧基和环氧基反应,导致其还原并因此破坏了层状结构。发现铁的浓度对于Chm为〜25%,对于GO-Chm为〜12%。一个VSM图显示GO-Chm的饱和磁化强度为9 emu / g。通过一系列实验阐明了制备的复合材料的吸附行为。 pH值影响的测试表明,吸附机理占主导地位(在染料分子和GO-Chm基质之间),并且表明酸性条件是吸附过程的最佳条件(pH 3)。动力学实验使用伪一阶,伪二阶和修正的伪二阶方程式提出了相对“快速”的吸附现象。将平衡数据拟合到Langmuir,Freundlich和Langmuir-Freundlich(L-F)模型,计算在25、45和65°C(分别为391、401和425 mg / g)下的最大吸附容量。还进行了热力学分析以计算自由能(ΔG〜0),焓(ΔH〜0)和熵(ΔS〜0)的变化。

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