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Context-Driven Exploration of Complex Chemical Reaction Networks

机译:复杂化学反应网络的背景驱动探索

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The construction of a reaction network containing all relevant intermediates and elementary reactions is necessary for the accurate description of chemical processes. In the case of a complex chemical reaction (involving, for instance, many reactants or highly reactive species), the size of such network may grow rapidly. Here, we present a computational protocol that constructs such reaction networks in a fully automated fashion steered in an intuitive, graph-based fashion through a single graphical user interface. Starting from a set of initial reagents new intermediates are explored through intra- and intermolecular reactions of already explored intermediates or new reactants presented to the network. This is done by assembling reactive complexes based on heuristic rules derived from conceptual electronic-structure theory and exploring the corresponding approximate reaction path. A subsequent path refinement leads to a minimum-energy path which connects the new intermediate to the existing ones to form a connected reaction network. Tree traversal algorithms are then employed to detect reaction channels and catalytic cycles. We apply our protocol to the formose reaction to study different pathways of sugar formation and to rationalize its autocatalytic nature.
机译:含有所有相关中间体和基本反应的反应网络的构建是准确描述化学过程的必要条件。在复杂化学反应的情况下(例如,许多反应物或高反应性物质),这种网络的大小可能迅速生长。这里,我们提出了一种计算协议,其以完全自动化的方式通过单个图形用户界面以直观的图形为基础的方式以完全自动化的方式构造这种反应网络。从一组初始试剂开始,通过已经探索的中间体或呈现给网络的新反应物的内部和分子间反应来探讨新的中间体。这是通过基于概念电子结构理论的启发式规则组装反应性复合物来完成,并探索相应的近似反应路径。后续路径细化导致最小能量路径,该能量路径将新的中间连接到现有的最小能量路径以形成连接的反应网络。然后采用树遍历算法来检测反应通道和催化循环。我们将我们的方案应用于甲型反应,以研究糖形成的不同途径,并合理化其自催化性质。

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