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首页> 外文期刊>Journal of Polymers and the Environment >Synthesis of Novel Bio-based Urea-Urethane Aerogels In-Situ Impregnated with Catalytic Metallic Nanoparticles for the Removal of Methylene Blue and Congo Red from Wastewater
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Synthesis of Novel Bio-based Urea-Urethane Aerogels In-Situ Impregnated with Catalytic Metallic Nanoparticles for the Removal of Methylene Blue and Congo Red from Wastewater

机译:用催化金属纳米粒子浸渍的新型生物基脲基氨基甲酸酯气凝胶用于除去废水中的亚甲基蓝和刚果红色的原位浸渍

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To combat environmental pollution resulting from discharge of hazardous contaminants into water streams, novel porous biocompatible urea-urethane aerogels in situ impregnated with catalytic metallic nanoparticles were synthesized. FTIR confirmed the formation of highly structured 2D-bifurcated hydrogen bonding network among neighboring urea groups creating aerogels that are strong enough to withstand the pressures of supercritical drying. In-situ impregnation with the catalytic metallic nanoparticles ensured that the systems are efficient in adsorbing, degrading and removing a variety of hazardous contaminants from polluted water. BET measurements indicated an almost reversible Type II isotherm and confirmed the macroporosity of the samples with surface area of around 6 m(2) g(-1). And swelling capvity of up to 700% The equilibrium uptake capacity of each contaminant increased with increasing the initial concentration due to the increasing driving force and has reached more than 90%. Thermodynamics interpretation indicated exothermic spontaneous processes for all systems with R-2 values around 0.9. Almost all adsorption processes followed a Langmuirian type behavior. Kinetics profile revealed that the adsorption is best fitted by pseudo-second order model with an intra-particle diffusion model suggesting that both pore diffusion and contaminant uptake by the aerogels play pivotal role in controlling the kinetics of the adsorption process.
机译:为了使危险污染物排放到水流中产生的环境污染,合成了原位的新型多孔生物相容性尿素 - 聚氨酯气凝胶浸渍有催化金属纳米颗粒。 FTIR确认在邻近尿素组中形成高度结构化的2D分叉氢键网络,从而产生足够强大的气凝胶以承受超临界干燥的压力。用催化金属纳米颗粒原位浸渍确保该系统在吸附,降解和除去来自污染水中各种危险污染物的系统有效。 BET测量表明了几乎可逆的II类等温线,并确认了表面积约为6m(2 )g(-1)的样品的宏观度。并且膨胀程度高达700%,每种污染物的平衡摄取能力增加,随着驱动力的增加而增加,初始浓度增加并且达到了90%以上。热力学解释表明所有系统的放热自发过程,R-2值约为0.9。几乎所有的吸附过程都遵循了Langmuirian类型的行为。动力学简介显示,吸附最佳地由伪二次阶模型安装,具有颗粒内扩散模型,表明孔隙扩散和污染物吸收在控制吸附过程的动力学方面发挥枢轴作用。

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