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首页> 外文期刊>Russian Journal of Physical Chemistry >Design of New Materials Based on Functionalization of Cu-BTC for Adsorption and Separation of CH(4)and CO2: GCMC and MD Simulations Study
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Design of New Materials Based on Functionalization of Cu-BTC for Adsorption and Separation of CH(4)and CO2: GCMC and MD Simulations Study

机译:基于Cu-BTC官能化的新材料设计CH(4)和CO2:GCMC和MD模拟研究的吸附和分离

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Metal-organic framework (MOF) is a strong candidate for gas storage and gas separation, which can be modified by various functional groups. In this study, we performed Grand Canonical Monte Carlo (GCMC) and molecular dynamics (MD) simulations to investigate the effect of F, Cl, Br, CHO, NO2, ethyl (Et), methyl (Me), and SH functional groups on the methane and carbon dioxide adsorption and CH4/CO(2)separation properties in copper benzene-1,3,5-tricarboxylate (Cu-BTC). Adsorption isotherm of CO(2)and CH(4)indicate that Cu-BTC has a slight adsorption preference for CO(2)over the methane. CH(4)adsorption on the NH2, Et, and Me derivatives of Cu-BTC is slightly more than the parent Cu-BTC. Furthermore, our results showed that the MOF selectivity changed with the composition, functional group and pressure. Therefore, we will able choose specific condition for special application. MD results reveal that CO(2)molecules more strongly interact with MOF sorption sites than CH(4)molecules and also NH2-Cu-BTC system has the highest interaction energy. Furthermore, the mean-square displacement (MSD) results show that the motion of the gas molecules is diffusive and they can move more easily within the pores of Cu-BTC and its derivatives.
机译:金属有机框架(MOF)是气体储存和气体分离的强烈候选者,其可以通过各种官能团进行修饰。在这项研究中,我们进行了大规范蒙特卡罗(GCMC)和分子动力学(MD)模拟,以研究F,Cl,Br,Cho,No2,乙基(Et),甲基(ME)和SH官能团的效果甲烷和二氧化碳吸附和CH4 / CO(2)铜苯-1,3,5-三羧酸盐(Cu-BTC)的分离性质。 CO(2)和CH(4)的吸附等温线表明Cu-BTC对甲烷的CO(2)具有轻微的吸附偏好。 CH(4)在NH 2,ET和ME Cu-BTC的衍生物上的吸附略高于母体Cu-BTC。此外,我们的结果表明,MOF选择性随着组成,官能团和压力而变化。因此,我们将能够为特殊应用选择特定条件。 MD结果表明,CO(2)分子比CH(4)分子的MOF吸附位点更强烈地相互作用,并且NH 2 -CU-BTC系统具有最高的相互作用能量。此外,平均方位位移(MSD)结果表明,气体分子的运动是扩散的,并且它们可以在Cu-BTC的孔和其衍生物内更容易地移动。

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