首页> 外文期刊>Journal of Molecular Liquids >Molecular simulation and experimental investigation of temperature effect on chitosan-nanosilica supported mixed matrix membranes for dehydration of ethanol via pervaporation
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Molecular simulation and experimental investigation of temperature effect on chitosan-nanosilica supported mixed matrix membranes for dehydration of ethanol via pervaporation

机译:壳聚糖 - 纳米硅藻的温度效应的分子模拟及实验研究支持混合基质膜通过渗透蒸发乙醇脱水

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AbstractIn this study, novel chitosan/silica mixed matrix membranes were prepared by 10wt% loading of TEOS and APTEOS into chitosan matrix and simultaneously results were simulated by molecular simulation methods to investigate the reliability of the experiment results. The fabricated membranes were structurally characterized using scanning electron microscopy (SEM), Fourier transform infrared spectroscopy (FTIR), atomic force microscopy (AFM), and operationally evaluated by ethanol dehydration permeation tests. SEM analysis showed a uniform distribution of silica nanoparticles in the polymer matrix. FTIR analysis indicated that, compared to the neat membrane, the presence of APTEOS and TEOS initiators caused formation of stronger bonds of hydroxyl (OH) and amino (NH) groups. The XRD test was also done by molecular simulation to investigate the crystallinity of the simulated membranes. Results revealed that membrane containing APTEOS was more amorphous than membrane containing TEOS. Also, the glass transition temperatures the membranes containing APTEOS and TEOS was calculated to be 162 and 160.8°C, respectively. Permeation test results indicated that for both membranes the permeation flux increased and separation factor decreased with temperature. The maximum flux and best separation factor for CS/APTEOS and CS/TEOS were obtained at 70°C and 30°C, respectively. Chitosan/TEOS membrane showed the best separation factor of 450 in 30°C, while for Chitosan/APTEOS membrane this value was less than 400. CS/APTEOS membrane showed better pervaporation separation index (PSI); however, the results showed that separation index of both membranes, which was initially more than 320 in 30°C, decreased with temperature and reached to less than 130 in 70°C. Also, the simulation results were in good agreement with experiment results.Highlights?3 different MMMs were synthesized and simulated by MD approach for pervaporation of ethanol.?SiO2fillers were used in the chitosan membrane in three operating temperatures.?Transport and separation properties increased by fillers.?Simulation results showed good agreements with experimental results.]]>
机译:<![cdata [ 抽象 在本研究中,通过10wt%的TEOS和Apteos载入壳聚糖的10wt%的TEOS和APTEOS中制备了新的壳聚糖/二氧化硅混合基质膜通过分子模拟方法模拟基质和同时结果,以研究实验结果的可靠性。使用扫描电子显微镜(SEM),傅里叶变换红外光谱(FTIR),原子力显微镜(AFM),并通过乙醇脱水渗透试验进行结构表征制造的膜。 SEM分析表明,聚合物基质中二氧化硅纳米颗粒的均匀分布。 FTIR分析表明,与纯膜相比,APTEOS和TEOS引发剂的存在使得形成羟基(OH)和氨基(NH)基团的更强键。还通过分子模拟来研究XRD试验,以研究模拟膜的结晶度。结果表明,含有ApTeos的膜比含TEOS的膜更为无定形。而且,玻璃化转变温度将含有APTEOS和TEOS的膜分别计算为162和160.8℃。渗透测试结果表明,对于膜两种膜,渗透通量增加和分离因子随温度降低。在70℃和30℃下获得Cs / Apteos和Cs / Teos的最大通量和最佳分离因子。壳聚糖/ TEOS膜显示出最佳的30°C分离因子450,而对于壳聚糖/ APTEOS膜,该值小于400.CS / APTEOS膜显示出更好的渗透流分离指数(PSI);然而,结果表明,在30℃下最初大于320的两种膜的分离指数随温度降低,70℃下达到小于130。此外,仿真结果与实验结果吻合良好。 突出显示 3种不同的MMM被MD方法被MD方法进行了合成和模拟乙醇的渗透。 < CE:标签>? SIO 2 填料用于壳聚糖三个工作温度的膜。 运输和分离性能增加填充物。 模拟结果表明与实验结果良好的协议。 ]]>

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