过渡状态
化学
反应机理
基本反应
量子化学
化学反应
支化(高分子化学)
Atom(片上系统)
计算化学
量子
反应速率
有机反应
势能面
化学物理
计算机科学
分子
有机化学
催化作用
动力学
物理
量子力学
嵌入式系统
作者
Colin A. Grambow,Lagnajit Pattanaik,William H. Green
标识
DOI:10.1038/s41597-020-0460-4
摘要
Abstract Reaction times, activation energies, branching ratios, yields, and many other quantitative attributes are important for precise organic syntheses and generating detailed reaction mechanisms. Often, it would be useful to be able to classify proposed reactions as fast or slow. However, quantitative chemical reaction data, especially for atom-mapped reactions, are difficult to find in existing databases. Therefore, we used automated potential energy surface exploration to generate 12,000 organic reactions involving H, C, N, and O atoms calculated at the ω B97X-D3/def2-TZVP quantum chemistry level. We report the results of geometry optimizations and frequency calculations for reactants, products, and transition states of all reactions. Additionally, we extracted atom-mapped reaction SMILES, activation energies, and enthalpies of reaction. We believe that this data will accelerate progress in automated methods for organic synthesis and reaction mechanism generation—for example, by enabling the development of novel machine learning models for quantitative reaction prediction.
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