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Adsorption Properties of β- and Hydroxypropyl-β-Cyclodextrins Cross-Linked with Epichlorohydrin in Aqueous Solution. A Sustainable Recycling Strategy in Textile Dyeing Process

机译:表氯醇交联的β-和羟丙基-β-环糊精在水溶液中的吸附性能纺织品染色过程中的可持续回收策略

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摘要

β-cyclodextrin (β-CD) and hydroxypropyl-β-cyclodextrin (HP-β-CD) were used to prepare insoluble polymers using epichlorohydrin as a cross-linking agent and the azo dye Direct Red 83:1 was used as target adsorbate. The preliminary study related to adsorbent dosage, pH, agitation or dye concentration allowed us to select the best conditions to carry out the rest of experiments. The kinetics was evaluated by Elovich, pseudo first order, pseudo second order, and intra-particle diffusion models. The results indicated that the pseudo second order model presented the best fit to the experimental data, indicating that chemisorption is controlling the process. The results were also evaluated by Freundlich, Langmuir and Temkin isotherms. According to the determination coefficient (R2), Freunlich gave the best results, which indicates that the adsorption process is happening on heterogeneous surfaces. One interesting parameter obtained from Langmuir isotherm is qmax (maximum adsorption capacity). This value was six times higher when a β-CDs-EPI polymer was employed. The cross-linked polymers were fully characterized by nuclear magnetic resonance (NMR), Fourier transform infrared spectroscopy (FTIR), thermal gravimetric analysis (TGA). Also, morphology and particle size distribution were both assessed. Under optimized conditions, the β-CDs-EPI polymer seems to be a useful device for removing Direct Red 83:1 (close 90%), from aqueous solutions and industrial effluents. Complementarily, non-adsorbed dye was photolyzed by a pulsed light driven advanced oxidation process. The proposed methodology is environmental and economically advantageous, considering the point of view of a sustainable recycling economy in the textile dyeing process.
机译:使用表氯醇作为交联剂,使用β-环糊精(β-CD)和羟丙基-β-环糊精(HP-β-CD)制备不溶性聚合物,并使用偶氮染料Direct Red 83:1作为目标吸附物。有关吸附剂剂量,pH,搅拌或染料浓度的初步研究使我们能够选择最佳条件来进行其余的实验。通过Elovich,拟一阶,拟二阶和粒子内扩散模型评估动力学。结果表明,伪二级模型最适合实验数据,表明化学吸附控制了过程。还通过Freundlich,Langmuir和Temkin等温线评估了结果。根据测定系数(R 2 ),Freunlich给出了最好的结果,表明吸附过程发生在异质表面上。从Langmuir等温线获得的一个有趣的参数是qmax(最大吸附容量)。当使用β-CDs-EPI聚合物时,该值高六倍。交联聚合物通过核磁共振(NMR),傅立叶变换红外光谱(FTIR),热重分析(TGA)进行了全面表征。另外,还评估了形态和粒度分布。在最佳条件下,β-CDs-EPI聚合物似乎是从水溶液和工业废水中去除直接红83:1(接近90%)的有用设备。补充地,未吸附的染料通过脉冲光驱动的高级氧化过程被光解。考虑到纺织品染色过程中可持续循环经济的观点,所提出的方法在环境和经济上都是有利的。

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