An automated method for graph-based chemical space exploration and transition state finding |
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Authors: | Pablo Ramos-Sánchez Jeremy N. Harvey José A. Gámez |
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Affiliation: | 1. Digital R&D, Covestro Deutschland AG, Leverkusen, Germany;2. Department of Chemistry, KU Leuven, Leuven, Belgium |
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Abstract: | Algorithms that automatically explore the chemical space have been limited to chemical systems with a low number of atoms due to expensive involved quantum calculations and the large amount of possible reaction pathways. The method described here presents a novel solution to the problem of chemical exploration by generating reaction networks with heuristics based on chemical theory. First, a second version of the reaction network is determined through molecular graph transformations acting upon functional groups of the reacting. Only transformations that break two chemical bonds and form two new ones are considered, leading to a significant performance enhancement compared to previously presented algorithm. Second, energy barriers for this reaction network are estimated through quantum chemical calculations by a growing string method, which can also identify non-octet species missed during the previous step and further define the reaction network. The proposed algorithm has been successfully applied to five different chemical reactions, in all cases identifying the most important reaction pathways. |
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Keywords: | activation energy automation chemical reactions chemical space cheminformatics graph theory quantum chemical calculations organic reactions reaction network transition states |
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