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Data mined ionic substitutions for the discovery of new compounds

机译:数据挖掘离子取代物以发现新化合物

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摘要

The existence of new compounds is often postulated by solid state chemists by replacing an ion in the crystal structure of a known compound by a chemically similar ion. In this work, we present how this new compound discovery process through ionic substitutions can be formulated in a mathematical framework. We propose a probabilistic model assessing the likelihood for ionic species to substitute for each other while retaining the crystal structure. This model is trained on an experimental database of crystal structures, and can be used to quantitatively suggest novel compounds and their structures. The predictive power of the model is demonstrated using cross-validation on quaternary ionic compounds. The different substitution rules embedded in the model are analyzed and compared to some of the traditional rules used by solid state chemists to propose new compounds (e.g., ionic size).
机译:固态化学家通常通过使用化学相似的离子代替已知化合物晶体结构中的离子来推测新化合物的存在。在这项工作中,我们介绍了如何在数学框架内制定通过离子取代的新化合物发现过程。我们提出了一种概率模型,用于评估离子物种在保持晶体结构的同时相互替代的可能性。该模型在晶体结构的实验数据库中进行训练,可用于定量建议新型化合物及其结构。使用四元离子化合物的交叉验证证明了模型的预测能力。分析了模型中嵌入的不同取代规则,并将其与固态化学家用于提出新化合物的一些传统规则(例如离子尺寸)进行了比较。

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