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The influence of solid state information and descriptor selection on statistical models of temperature dependent aqueous solubility

机译:固态信息和描述符选择对温度依赖性水溶性统计模型的影响

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摘要

Predicting the equilibrium solubility of organic, crystalline materials at all relevant temperatures is crucial to the digital design of manufacturing unit operations in the chemical industries. The work reported in our current publication builds upon the limited number of recently published quantitative structure–property relationship studies which modelled the temperature dependence of aqueous solubility. One set of models was built to directly predict temperature dependent solubility, including for materials with no solubility data at any temperature. We propose that a modified cross-validation protocol is required to evaluate these models. Another set of models was built to predict the related enthalpy of solution term, which can be used to estimate solubility at one temperature based upon solubility data for the same material at another temperature. We investigated whether various kinds of solid state descriptors improved the models obtained with a variety of molecular descriptor combinations: lattice energies or 3D descriptors calculated from crystal structures or melting point data. We found that none of these greatly improved the best direct predictions of temperature dependent solubility or the related enthalpy of solution endpoint. This finding is surprising because the importance of the solid state contribution to both endpoints is clear. We suggest our findings may, in part, reflect limitations in the descriptors calculated from crystal structures and, more generally, the limited availability of polymorph specific data. We present curated temperature dependent solubility and enthalpy of solution datasets, integrated with molecular and crystal structures, for future investigations. Electronic supplementary materialThe online version of this article (10.1186/s13321-018-0298-3) contains supplementary material, which is available to authorized users.
机译:预测有机结晶材料在所有相关温度下的平衡溶解度,对于化学工业中制造单元操作的数字化设计至关重要。我们当前出版物中报道的工作建立在数量有限的最近发表的定量结构与性质关系研究的基础上,该研究对水溶性的温度依赖性进行了建模。建立了一组模型来直接预测温度相关的溶解度,包括在任何温度下都没有溶解度数据的材料。我们建议需要修改的交叉验证协议来评估这些模型。建立了另一组模型来预测溶液项的相关焓,该模型可用于基于相同材料在另一温度下的溶解度数据来估算一个温度下的溶解度。我们调查了各种固态描述符是否改进了通过各种分子描述符组合获得的模型:晶格能量或根据晶体结构或熔点数据计算出的3D描述符。我们发现,这些都没有极大地改善温度依赖性溶解度或溶液终点的相关焓的最佳直接预测。这一发现令人惊讶,因为固态对两个端点的贡献很重要。我们建议,我们的发现可能部分反映了根据晶体结构计算出的描述符的局限性,并且更普遍地反映了多晶型物特定数据的有限可用性。我们提出了解决方案数据集与温度和温度的关系,包括分子和晶体结构,供以后研究。电子补充材料本文的在线版本(10.1186 / s13321-018-0298-3)包含补充材料,授权用户可以使用。

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