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Hybrid mesoporous silicates: A distinct aspect to synthesis and application for decontamination of phenols

机译:杂化介孔硅酸盐:苯酚的去污合成和应用的一个独特方面

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摘要

Water pollution due to organic compounds is of great concern and efforts are being made to develop efficient adsorbents for remediation of toxic pollutants. The development of new functionalized materials with increased performance is growing to meet the regulatory standards in response to public concerns for environment. In this study, an attempt has been made to investigate the influence of synthesis parameters like the reaction temperature, the surfactant-to-silica ratio and reaction time on the structural and textural properties of novel ordered mesoporous silica hybrids. In order to understand the effect of different synthesis parameters, all the prepared materials were systematically characterized by various analytical, spectroscopic and imaging techniques such as XRD, BET, TG etc. It was deduced from these studies that the synthesis temperature influence greatly the structural order whereas both the P104/Na2SiO3 molar ratio and reaction time found to influence textural properties significantly. However, under optimized experimental condition, we could achieve the functionalized silica hybrids that offers successful incorporation of -Amino, -Glucidoxy, -Methacrylate, -Vinyl and -Phenyl moieties indicated by FTIR peaks at 793 cm−1, 2870 cm−1, 796 cm−1, 1630 cm−1 and 954 cm−1. XRD studies reveal orthorhombic and tetragonal symmetry for the hybrids and these materials were found to be thermally stable due to incorporation of organic moiety in silica matrix. Functionalized silica hybrids then applied as adsorbents demonstrated efficient and comparable removal of 4-aminophenol and p-nitrophenol in 20 min facilitated through organic moiety. Detailed modeling of the sorption using equilibrium and kinetic isotherms has been carried out to get an insight into the transport process. The adsorption isotherms of phenol derivatives are well-fitted with the Langmuir, Freundlich and Temkin Isotherms and the adsorption kinetics follows the pseudo second order model. The modeling confirms that the uptake is a chemisorption process.
机译:由于有机化合物引起的水污染受到极大关注,并且正在努力开发用于去除有毒污染物的有效吸附剂。为了满足公众对环境的关注,性能不断提高的新型功能化材料的开发正日益满足法规标准。在这项研究中,已尝试研究合成参数如反应温度,表面活性剂对二氧化硅的比例和反应时间对新型有序介孔二氧化硅杂化体的结构和织构性质的影响。为了了解不同合成参数的影响,所有制备的材料都通过各种分析,光谱和成像技术(如XRD,BET,TG等)进行了系统表征。从这些研究中可以推断出合成温度对结构顺序的影响很大。而P104 / Na2SiO3的摩尔比和反应时间均显着影响织构性能。但是,在优化的实验条件下,我们可以实现功能化的二氧化硅杂化物,该杂化物可以成功掺入793 cm -1 处FTIR峰表示的-氨基,-葡糖氧基,-甲基丙烯酸酯,-乙烯基和-苯基部分。 ,2870 cm -1 ,796 cm -1 ,1630 cm -1 和954 cm -1 。 XRD研究揭示了杂化体的正交和四边形对称性,并且由于在二氧化硅基质中引入了有机部分,这些材料具有热稳定性。然后将功能化的二氧化硅杂化物用作吸附剂,证明通过有机部分可在20分钟内有效且相当地除去4-氨基苯酚和对硝基苯酚。使用平衡和动力学等温线对吸附进行了详细建模,以深入了解运输过程。苯酚衍生物的吸附等温线与Langmuir,Freundlich和Temkin等温线非常吻合,吸附动力学遵循伪二级模型。该模型证实摄取是化学吸附过程。

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