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Database for CO2 Separation Performances of MOFs Based on Computational Materials Screening

机译:基于计算材料筛选的MOFS的CO2分离性能数据库

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Metal-organic frameworks (MOFs) are potential adsorbents for CO2 capture. Because thousands of MOFs exist, computational studies become very useful in identifying the top performing materials for target applications in a time-effective manner. In this study, molecular simulations were performed to screen the MOF database to identify the best materials for CO2 separation from flue gas (CO2/N-2) and landfill gas (CO2/CH4) under realistic operating conditions. We validated the accuracy of our computational approach by comparing the simulation results for the CO2 uptakes, CO2/N-2 and CO2/CH4 selectivities of various types of MOFs with the available experimental data. Binary CO2/N-2 and CO2/CH4 mixture adsorption data were then calculated for the entire MOF database. These data were then used to predict selectivity, working capacity, regenerability, and separation potential of MOFs. The top performing MOF adsorbents that can separate CO2/N-2 and CO2/CH4 with high performance were identified. Molecular simulations for the adsorption of a ternary CO2/N-2/CH4 mixture were performed for these top materials to provide a more realistic performance assessment of MOF adsorbents. The structure-performance analysis showed that MOFs with Delta Q(st)(0) 30 kJ/mol, 3.8 angstrom pore-limiting diameter 5 angstrom, 5 angstrom largest cavity diameter 7.5 angstrom, 0.5 phi 0.75, surface area 1000 m(2)/g, and rho 1 g/cm(3) are the best candidates for selective separation of CO2 from flue gas and landfill gas. This information will be very useful to design novel MOFs exhibiting high CO2 separation potentials. Finally, an online, freely accessible database https://cosmoserc.ku.edu.tr was established, for the first time in the literature, which reports all of the computed adsorbent metrics of 3816 MOFs for CO2/N-2, CO2/CH4, and CO2/N-2/CH4 separations in addition to various structural properties of MOFs.
机译:金属有机框架(MOF)是CO2捕获的潜在吸附剂。由于存在数千个MOF,但计算研究在以时间有效的方式识别目标应用的顶部表演材料非常有用。在该研究中,进行分子模拟以筛选MOF数据库,以在现实的操作条件下识别来自烟气(CO2 / N-2)和垃圾填埋气体(CO2 / CH4)的CO2分离的最佳材料。通过将各种类型的MOF的CO2适度,CO2 / N-2和CO2 / CH4选择性与可用的实验数据进行比较,我们通过比较各种类型的MOF的仿真结果来验证了计算方法的准确性。然后对整个MOF数据库计算二元CO2 / N-2和CO2 / CH4混合物吸附数据。然后使用这些数据来预测MOF的选择性,工作能力,再生性和分离电位。鉴定了可以分离具有高性能的CO 2 / N-2和CO 2 / CH4的COOM吸附剂的顶部。对这些顶部材料进行三元CO2 / N-2 / CH4混合物吸附的分子模拟,以提供对MOF吸附剂的更现实的性能评估。结构 - 性能分析表明,具有Delta Q(ST)(0)&GT的MOF。 30 kJ / mol,3.8埃·埃孔径直径& 5埃,5埃&最大腔直径& 7.5埃,0.5埃phi& 0.75,表面积& 1000米(2)/ g,rho& 1克/厘米(3)是选择性分离烟气和垃圾填埋气体的最佳候选者。这些信息对于设计具有高CO2分离电位的新型MOFS非常有用。最后,在文献中首次建立了在线,自由访问的数据库HTTPS://cosmoserc.ku.edu.tr。除了MOF的各种结构性能外,CH 4和CO2 / N-2 / CH4分离。

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