催化作用
合理设计
化学空间
约束(计算机辅助设计)
材料科学
纳米技术
基因
计算生物学
化学
组合化学
生物
药物发现
数学
生物化学
几何学
作者
Aliaksei Mazheika,Yang‐Gang Wang,Rosendo Valero,Francesc Viñes,Francesc Illas,Luca M. Ghiringhelli,Sergey V. Levchenko,Matthias Scheffler
标识
DOI:10.1038/s41467-022-28042-z
摘要
Catalytic-materials design requires predictive modeling of the interaction between catalyst and reactants. This is challenging due to the complexity and diversity of structure-property relationships across the chemical space. Here, we report a strategy for a rational design of catalytic materials using the artificial intelligence approach (AI) subgroup discovery. We identify catalyst genes (features) that correlate with mechanisms that trigger, facilitate, or hinder the activation of carbon dioxide (CO2) towards a chemical conversion. The AI model is trained on first-principles data for a broad family of oxides. We demonstrate that surfaces of experimentally identified good catalysts consistently exhibit combinations of genes resulting in a strong elongation of a C-O bond. The same combinations of genes also minimize the OCO-angle, the previously proposed indicator of activation, albeit under the constraint that the Sabatier principle is satisfied. Based on these findings, we propose a set of new promising catalyst materials for CO2 conversion.
科研通智能强力驱动
Strongly Powered by AbleSci AI