论文标题

探路者 - 通过有效的基于图的方法导航和分析化学反应网络

Pathfinder -- Navigating and Analyzing Chemical Reaction Networks with an Efficient Graph-based Approach

论文作者

Türtscher, Paul L., Reiher, Markus

论文摘要

虽然对化学反应空间的第一原理探索领域一直在不断增长,但分析产生的化学反应网络(CRN)的策略的发展仍在落后。 CRN由反应相关的化合物组成。分析这些化合物如何基于动力学建模是一项非平凡的任务。在这里,我们介绍了图形优化驱动的算法和程序探测器,以允许对CRN进行这种分析。这项工作的CRN是通过我们的开源趋化性趋化反应网络勘探软件获得的。趋化剂探测基本步骤的化合物的反应性组合,并将其分为反应。通过将CRN的这些反应编码为由化合物和反应顶点组成的图,并添加有关激活屏障以及所需试剂的信息,可以在图表的边缘中获得CRN的完整图理论表示。由于化合物形成的概率取决于起始条件,因此必须考虑反应过程中任何化合物的消耗以反映试剂的可用性。为此,我们引入复合成本以反映复合可用性。同时,确定的化合物成本将CRN中的化合物按照其形成的可能性进行排名。然后,此排名使我们能够首先在CRN中探测可访问的化合物,以进一步探索尚未开发的地形。我们首先说明了抽象小型CRN的工作原理。之后,在碘与水与碘酸和碘化氢的影响的例子中证明了探路。这两个过程均在同一CRN中进行分析,我们使用探路者指导的自主第一原理CRN探索软件趋化趋化趋化趋化趋化趋化趋化软件。

While the field of first-principles explorations into chemical reaction space has been continuously growing, the development of strategies for analyzing resulting chemical reaction networks (CRNs) is lagging behind. A CRN consists of compounds linked by reactions. Analyzing how these compounds are transformed into one another based on kinetic modeling is a nontrivial task. Here, we present the graph-optimization-driven algorithm and program Pathfinder to allow for such an analysis of a CRN. The CRN for this work has been obtained with our open-source Chemoton reaction network exploration software. Chemoton probes reactive combinations of compounds for elementary steps and sorts them into reactions. By encoding these reactions of the CRN as a graph consisting of compound and reaction vertices and adding information about activation barriers as well as required reagents to the edges of the graph yields a complete graph-theoretical representation of the CRN. Since the probabilities of the formation of compounds depend on the starting conditions, the consumption of any compound during a reaction must be accounted for to reflect the availability of reagents. To account for this, we introduce compound costs to reflect compound availability. Simultaneously, the determined compound costs rank the compounds in the CRN in terms of their probability to be formed. This ranking then allows us to probe easily accessible compounds in the CRN first for further explorations into yet unexplored terrain. We first illustrate the working principle on an abstract small CRN. Afterward, Pathfinder is demonstrated in the example of the disproportionation of iodine with water and the comproportionation of iodic acid and hydrogen iodide. Both processes are analyzed within the same CRN which we construct with our autonomous first-principles CRN exploration software Chemoton guided by Pathfinder.

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