Investigation of methane adsorption in kaolinite–methanol intercalation complex interlayer by Monte Carlo simulations

Lei Zhu, Weijiang Song, Chengyong Liu, W. Gu, Mengye Zhao, Zhicheng Liu, Yang Wang, Riwa Hao, Hong-bin Cheng
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Abstract

The methane adsorption at room temperature in the interlayer of the kaolinite–methanol complex (Kln–Me) with different methanol content is investigated with grand canonical Monte Carlo (GCMC) simulation. The mechanism and structure of methanol intercalated kaolinite (Kln) is proposed, and the effect of methanol on methane adsorption by Kln–Me is discussed. The results indicate that the methanol adsorption in the Kln interlayer is mostly physical with non-bonded energy. The interlayer spacing ( d) of Kln–Me optimized by the DREIDING force field is in good agreement with the experimental data measured with X-ray diffraction. The configuration, adsorption properties, and adsorption isotherms are obtained for eight Kln–Me systems with different number (2–20) of methanol molecules in interlayer space. By comparing methane adsorption in the Kln–Me interlayer with different number of methanol molecules, we discover the complex interplay of factors influencing methane adsorption in the Kln–Me interlayer, especially the number of methanol molecules and free volume. It is found that the adsorption capacity of Kln can be enhanced by inserting methanol molecules into its interlayer. This analysis also underscores the GCMC simulation as a viable tool to calculate kaolinite/organic intercalation composites for potential applications.
高岭石-甲醇插层中甲烷吸附的蒙特卡罗模拟研究
采用大规范蒙特卡罗(GCMC)模拟研究了不同甲醇含量的高岭石-甲醇配合物(Kln-Me)在室温下对甲烷的吸附。提出了甲醇插层高岭石(Kln)的机理和结构,讨论了甲醇对其吸附甲烷的影响。结果表明,甲醇在Kln夹层中的吸附主要是物理吸附,无键能吸附。利用dreding力场优化得到的Kln-Me层间距(d)与x射线衍射测量的实验数据吻合较好。得到了层间空间中甲醇分子数(2 ~ 20)不同的8个Kln-Me体系的构型、吸附性能和吸附等温线。通过比较不同甲醇分子数的Kln-Me夹层中甲烷的吸附,我们发现影响甲烷在Kln-Me夹层中吸附的因素是复杂的相互作用,尤其是甲醇分子数和自由体积。发现在其中间层中插入甲醇分子可以提高Kln的吸附能力。该分析还强调了GCMC模拟作为计算高岭石/有机插层复合材料潜在应用的可行工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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