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Predicting and optimizing asymmetric catalyst performance using the principles of experimental design and steric parameters

机译:使用实验设计和空间参数原理预测和优化不对称催化剂的性能

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摘要

Using a modular amino acid based chiral ligand motif, a library of ligands was synthesized systematically varying the substituents at two positions. The effects of these changes on ligand structure were probed in the enantioselective allylation of benzaldehyde, acetophenone, and methylethyl ketone under Nozaki-Hiyama-Kishi conditions. The resulting three-dimensional datasets allowed for the construction of mathematical surface models which describe the interplay of substituent effects on enantioselectivity for a given reaction. The surface models were both extrapolated and manipulated to predict the enantioselective outcomes of several previously untested ligands. Analyses were also used to predict optimal ligand structure of a minimal dataset. Within the dataset, a linear free energy relationship was also discovered and a direct comparison of both the linear prediction as well as the three-dimensional prediction illustrates the potential predictive power of using a three-dimensional model approach to asymmetric catalyst development.
机译:使用基于模块氨基酸的手性配体基序,系统地合成了两个位置的取代基,从而合成了一个配体库。在Nozaki-Hiyama-Kishi条件下,通过苯甲醛,苯乙酮和甲基乙基酮的对映选择性烯丙基化,探讨了这些变化对配体结构的影响。所得的三维数据集可用于构建数学表面模型,该表面模型描述了给定反应中取代基对对映选择性的相互作用。表面模型被外推和操纵以预测几种先前未测试的配体的对映选择性结果。分析还用于预测最小数据集的最佳配体结构。在数据集中,还发现了线性自由能关系,并且线性预测和三维预测的直接比较说明了使用三维模型方法进行不对称催化剂开发的潜在预测能力。

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