Chemoinformatics-Driven Design of New Physical Solvents for Selective CO2 Absorption

被引:18
|
作者
Orlov, Alexey A. [1 ]
Demenko, Daryna Yu [1 ]
Bignaud, Charles [2 ]
Valtz, Alain [3 ]
Marcou, Gilles [1 ]
Horvath, Dragos [1 ]
Coquelet, Christophe [3 ]
Varnek, Alexandre [1 ]
de Meyer, Frederick [2 ,3 ]
机构
[1] Univ Strasbourg, Fac Chem, Lab Chemoinformat, F-67081 Strasbourg, France
[2] TotalEnergies SE, Explorat Prod Dev & Support Operat Liquefied Nat, CCUS R&D Program, F-92078 Paris, France
[3] PSL Univ, Ctr Thermodynam Proc CTP, Mines ParisTech, 35 Rue St Honore, F-77300 Fontainebleau, France
关键词
gas solubility; industrial gases; carbon dioxide; methane; nitrogen; hydrogen; carbon monoxide; chemoinformatics; machine learning; KPA PARTIAL-PRESSURE; ANHYDROUS TERTIARY ALKANOLAMINES; NONPOLAR GASES; CARBON-DIOXIDE; 303.15; K; HALOGENATED COMPOUNDS; NONAQUEOUS SOLUTIONS; HYDROGEN-SULFIDE; ORGANIC-SOLVENTS; PART I;
D O I
10.1021/acs.est.1c04092
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The removal of CO2 from gases is an important industrial process in the transition to a low-carbon economy. The use of selective physical (co-)solvents is especially perspective in cases when the amount of CO2 is large as it enables one to lower the energy requirements for solvent regeneration. However, only a few physical solvents have found industrial application and the design of new ones can pave the way to more efficient gas treatment techniques. Experimental screening of gas solubility is a labor-intensive process, and solubility modeling is a viable strategy to reduce the number of solvents subject to experimental measurements. In this paper, a chemoinformatics-based modeling workflow was applied to build a predictive model for the solubility of CO2 and four other industrially important gases (CO, CH4, H-2, and N-2). A dataset containing solubilities of gases in 280 solvents was collected from literature sources and supplemented with the new data for six solvents measured in the present study. A modeling workflow based on the usage of several state-of-the-art machine learning algorithms was applied to establish quantitative structure-solubility relationships. The best models were used to perform virtual screening of the industrially produced chemicals. It enabled the identification of compounds with high predicted CO2 solubility and selectivity toward other gases. The prediction for one of the compounds, 4-methylmorpholine, was confirmed experimentally.
引用
收藏
页码:15542 / 15553
页数:12
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