石墨烯、碳化硅和氮化硼纳米通道分离CH4/CO2气体混合物:一种综合计算方法

IF 4.3 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
ACS Omega Pub Date : 2025-07-24 DOI:10.1021/acsomega.5c03400
Jafar Azamat*, Mahdi Alizadeh and Nima Ajalli, 
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引用次数: 0

摘要

本研究对基于石墨烯、碳化硅(SiC)和氮化硼(BN)的纳米通道分离CH4/CO2气体混合物进行了全面的计算研究。采用分子动力学(MD)模拟方法对不同压力和构型下二维材料的吸附动力学、渗透速率和分离效率进行了评价。石墨烯由于其原子厚度和高表面能而表现出优异的CH4渗透率,但选择性受到与CO2弱相互作用的限制。SiC具有较强的吸附位点和平衡的输运动力学,具有较好的CO2选择性。BN表现出优异的不渗透性,由于其高表面极性和强大的屏障性能,它有效地充当了CO2的分子筛。扩散系数和相互作用能表现出较强的物质依赖性,CO2在极性表面表现出较高的扩散和吸附。同时,由于van der Waals相互作用减弱,CH4的迁移率降低。这些发现强调了纳米结构控制和表面工程在优化气体分离性能中的重要性。本研究提供的见解为设计混合纳米通道架构奠定了坚实的基础,该架构利用每种材料的独特性质来实现先进的分离系统。这项工作有望为清洁能源应用、碳捕获和工业气体处理开发可扩展的节能膜。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The CH4/CO2 Gas Mixture Separation Using the Graphene, SiC, and BN Nanochannels: A Comprehensive Computational Approach

This study presents a comprehensive computational investigation into the separation of CH4/CO2 gas mixtures using nanochannels based on graphene, silicon carbide (SiC), and boron nitride (BN). Molecular dynamics (MD) simulations were employed to evaluate the adsorption dynamics, permeation rates, and separation efficiency of these two-dimensional materials under varying pressures and configurations. Graphene exhibited superior CH4 permeability due to its atomic thickness and high surface energy, though selectivity was limited by weak interaction with CO2. SiC demonstrated moderate gas permeability with enhanced CO2 selectivity, attributed to its stronger adsorption sites and balanced transport dynamics. BN displayed exceptional impermeability, effectively acting as a molecular sieve for CO2, driven by its high surface polarity and robust barrier properties. The diffusion coefficients and interaction energies revealed a strong material dependence, with CO2 exhibiting higher diffusion and adsorption on polar surfaces. At the same time, CH4 showed reduced mobility due to weaker van der Waals interactions. These findings underscore the significance of nanoscale structural control and surface engineering in optimizing gas separation performance. The insights provided by this study lay a robust foundation for designing hybrid nanochannel architectures, which leverage the unique properties of each material to achieve advanced separation systems. This work holds promise for developing scalable, energy-efficient membranes for clean energy applications, carbon capture, and industrial gas processing.

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来源期刊
ACS Omega
ACS Omega Chemical Engineering-General Chemical Engineering
CiteScore
6.60
自引率
4.90%
发文量
3945
审稿时长
2.4 months
期刊介绍: ACS Omega is an open-access global publication for scientific articles that describe new findings in chemistry and interfacing areas of science, without any perceived evaluation of immediate impact.
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