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Highly adsorptive chitosan/saponin-bentonite composite film for removal of methyl orange and Cr(VI)

机译:高吸附壳聚糖/皂苷膨润土复合膜,用于除去甲基橙和Cr(VI)

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Robust and simple composite films for the removal of methyl orange (MO) and Cr(VI) have been prepared by combining chitosan, saponin, and bentonite at a specific ratio. There are several composite films (chitosan-saponin-bentonite (CSB)) prepared; among them, the composite films CSB2:3 and CSB1:1 have the highest removal efficiency toward MO and Cr(VI) where the maximum removal is 70.4% (pH 4.80) and 92.3% (pH 5.30), respectively. It was found that different types of adsorbate have different thermodynamic properties of the adsorption process; the adsorption of MO onto CSB2:3, chitosan, and acid-activated bentonite (AAB) proceeded endothermically, while the adsorption of Cr(VI) onto CSB1:1, chitosan, and AAB proceeded exothermically. The parameters of the adsorption were modeled by using isotherm and kinetic equations. The models of Langmuir, Freundlich, Redlich-Peterson, Sips, and Toth were used for fitting the adsorption isotherm data at a temperature of 30, 45, and 60 A degrees C; all of the isotherm models could represent the data well. The result indicates that CSB2:3 has the highest adsorption capacity toward MO with q (m) of 360.90 mg g(-1) at 60 A degrees C; meanwhile, CSB1:1 has the highest adsorption capacity toward Cr(VI) with q (m) 641.99 mg g(-1) at 30 A degrees C. The pseudo-second-order model could represent the adsorption kinetics data better than the pseudo-first-order equation. The adsorption mechanism was proposed, and the thermodynamic properties of the adsorption were also studied.
机译:通过以特定比例组合壳聚糖,皂苷和膨润土,制备用于除去甲基橙(Mo)和Cr(VI)的鲁棒和简单的复合薄膜。制备了几件复合薄膜(壳聚糖 - 皂苷膨润土(CSB));其中,复合膜CSB2:3和CSB1:1对Mo和Cr(VI)具有最高的去除效率,其中最大去除率分别为70.4%(pH 4.80)和92.3%(pH 5.30)。发现不同类型的吸附物具有不同的吸附过程的热力学性质;在CSB2:3,壳聚糖和酸活化的膨润土(AAB)上的吸附在摄热上进行,同时将Cr(VI)的吸附在CSB1:1,壳聚糖和AAB上进行放热。吸附的参数是通过使用等温和动力学方程进行建模的。 Langmuir,Freundlich,Redlich-Peterson,SIPS和Toth的型号用于将吸附等温数据在30,45和60°C的温度下拟合;所有等温模型都可以呈现数据。结果表明,CSB2:3在60℃下具有360.90mg G(-1)的Q(m)的最高吸附容量;同时,CSB1:1在30℃下具有Q(m)641.99mg(-1)的Cr(vi)的最高吸附容量。伪二阶模型可以更好地代表吸附动力学数据比伪 - 排气方程。提出了吸附机理,还研究了吸附的热力学性质。

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