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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Molecular Simulations and Experimental Studies of CO2, CO, and N2 Adsorption in Metal-Organic Frameworks
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Molecular Simulations and Experimental Studies of CO2, CO, and N2 Adsorption in Metal-Organic Frameworks

机译:金属有机骨架中吸附CO2,CO和N2的分子模拟和实验研究

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摘要

Atomistic grand canonical Monte Carlo simulations were performed to understand the interplay of factors (pore size, heat of adsorption, open metal sites, electrostatics, and ligand functionalization) contributing to adsorption of CO2, CO, and N2 in MOFs. Four MOFs-IRMOF-1, IRMOF-3, Cu-BTC, and Zn2[bdc]2-[dabco]-were chosen for comparison. Binary mixtures (CO2/CO) and (CO2/N2) containing 5%, 50%, and 95% CO2 were examined. CO2 is preferentially adsorbed over CO and N2 in all MOFs. Cu-BTC displays higher selectivities for CO2 over CO at lower pressures and CO2 over N2 at all pressures for all mixtures due to the increase in electrostatic interactions of CO2 with the exposed copper sites. However, IRMOF-3 shows surprisingly high selectivities for CO2 over CO for 50% and 95% mixtures at higher pressures due to the presence of amine-functionalized groups and high pore volume. CO2 selectivities increase with increasing CO2 concentration in the gas mixtures at total pressures above 5 bar. On the basis of the results obtained, it can be concluded that construction of smaller pore size MOFs relative to sorbate size with embedded open metal sites or functionalized groups can lead to greater enhancement of these adsorption separation systems.
机译:进行了原子大正则蒙特卡罗模拟,以了解影响MOF中CO2,CO和N2吸附的因素(孔径,吸附热,开放金属位,静电和配体官能化)之间的相互作用。选择了四个MOF-IRMOF-1,IRMOF-3,Cu-BTC和Zn2 [bdc] 2- [dabco]进行比较。检查了包含5%,50%和95%CO2的二元混合物(CO2 / CO)和(CO2 / N2)。在所有MOF中,CO2优先吸附于CO和N2。对于所有混合物,Cu-BTC在较低压力下对CO2的选择性较高,在所有压力下对N2的选择性较高,这是因为CO2与裸露的铜部位之间的静电相互作用增加。但是,由于存在胺官能化基团和高孔体积,IRMOF-3在较高压力下对50%和95%的混合物显示出比CO更高的CO2选择性。在总压力高于5 bar时,气体混合物中CO2浓度的增加会导致CO2选择性的增加。根据获得的结果,可以得出结论,相对于具有嵌入的开放金属位点或官能团的吸附物尺寸,较小孔径的MOF的构建可以导致这些吸附分离系统的更大增强。

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