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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Molecular simulations of adsorption isotherms for linear and branched alkanes and their mixtures in silicalite
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Molecular simulations of adsorption isotherms for linear and branched alkanes and their mixtures in silicalite

机译:硅沸石中直链和支链烷烃及其混合物的吸附等温线的分子模拟

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The configurational-bias Monte Carlo (CBMC) technique has been used for computing the adsorption isotherms for linear and branched 2-methylalkanes on silicalite. The carbon numbers of the alkanes ranged from four to nine. For branched alkanes inflection behavior was observed for all carbon numbers studied. The inflection was found to occur at a loading of four molecules per unit cell. Below this loading the branched alkanes are seen to be located predominantly at the intersections of the straight and zigzag channels. To obtain loadings higher than four, the branched alkane must seek residence in the channel interiors which is energetically more demanding and therefore requires disproportionately higher pressures; this leads to the inflection behavior. Linear alkanes with six and more carbon atoms also were found to exhibit inflection behavior. Hexane and heptane show inflection due to commensurate 'freezing'; the length of these molecules is commensurate with the length of the zigzag channels. This leads to a higher packing efficiency than for other linear alkanes. Available experimental data from the literature are used to confirm the accuracy of the predictions of the CBMC simulations. Furthermore, the temperature dependency of the isotherms are also properly modeled. For purposes of fitting the isotherms we found that the dual-site Langmuir model provides an excellent description of the simulated isotherms for linear and branched alkanes. In this model we distinguish between two sites with differing ease of adsorption: site A, representing the intersections between the straight and zigzag channels, and site B, representing the channel interiors. CBMC simulations of isotherms of 50-50 binary mixtures of C5, C6, and C7 hydrocarbon isomers show some remarkable and hitherto unreported features. The loading of the branched isomer in all three binary mixtures reaches a maximum when the total mixture loading corresponds to four molecules per unit cell. Higher loadings are obtained by 'squeezing out' of the branched alkane from the silicalite and replacing these with the linear alkane. This 'squeezing out' effect is found to be entropic in nature; the linear alkanes have a higher packing efficiency and higher loadings are more easily achieved by replacing the branched alkanes with the linear alkanes. The mixture isotherms can be predicted quite accurately by applying the appropriate mixture rules to the dual-site Langmuir model. This model allows the mixture isotherm to be predicted purely on the basis of the parameters describing the isotherms of the pure components. The sorption selectivity exhibited by silicalite for the linear alkane in preference to the branched alkane in mixtures of C5, C6, and C7 hydrocarbon isomers, provides a potential for the development of a novel separation technique based on entropy-driven sorption selectivity.
机译:构型偏置蒙特卡洛(CBMC)技术已用于计算硅沸石上线性和支化的2-甲基烷烃的吸附等温线。烷烃的碳原子数为4至9。对于支链烷烃,在所有研究的碳数下均观察到了拐点行为。发现该弯曲发生在每单位细胞四个分子的负载下。在该负荷以下,可以看出支链烷烃主要位于直通道和之字形通道的交点处。为了获得高于4的负载量,支链烷烃必须在通道内部寻求驻留,这在能量上要求更高,因此需要不成比例的更高压力。这导致了拐弯行为。还发现具有六个或更多个碳原子的直链烷烃表现出拐点行为。己烷和庚烷由于相应的“冻结”而出现变形。这些分子的长度与之字形通道的长度相称。这导致比其他线性烷烃更高的填充效率。来自文献的可用实验数据用于确认CBMC模拟预测的准确性。此外,还可以对等温线的温度依赖性进行适当建模。为了拟合等温线,我们发现双位Langmuir模型为线性和支链烷烃的模拟等温线提供了很好的描述。在此模型中,我们区分了具有不同吸附容易性的两个位置:位置A代表直线通道和锯齿形通道之间的交叉点,位置B代表通道内部。 C5,C6和C7碳氢化合物异构体的50-50二元混合物的等温线的CBMC模拟显示出一些迄今未曾报道的显着特征。当总混合物负载量对应于每单位细胞四个分子时,所有三种二元混合物中支链异构体的负载量达到最大值。通过从硅质岩中“挤出”支链烷烃并将其替换为线性烷烃,可获得更高的负载量。人们发现这种“挤出”效应本质上是熵的。直链烷烃具有更高的填充效率,并且通过用直链烷烃代替支链烷烃更容易实现更高的负载量。通过将适当的混合规则应用于双站点Langmuir模型,可以非常准确地预测混合等温线。该模型允许仅根据描述纯组分等温线的参数来预测混合物等温线。硅沸石对C5,C6和C7烃异构体混合物中的直链烷烃优于支链烷烃的吸附选择性为开发基于熵驱动的吸附选择性的新型分离技术提供了潜力。

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