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Computational Mapping of Dirhodium(II) Catalysts
Author(s) -
Green Adam I.,
Tinworth Christopher P.,
Warriner Stuart,
Nelson Adam,
Fey Natalie
Publication year - 2021
Publication title -
chemistry – a european journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.687
H-Index - 242
eISSN - 1521-3765
pISSN - 0947-6539
DOI - 10.1002/chem.202003801
Subject(s) - reactivity (psychology) , catalysis , steric effects , rhodium , yield (engineering) , selection (genetic algorithm) , chemistry , selectivity , combinatorial chemistry , principal component analysis , outcome (game theory) , principal (computer security) , computer science , materials science , organic chemistry , mathematics , artificial intelligence , medicine , alternative medicine , mathematical economics , pathology , metallurgy , operating system
The chemistry of dirhodium(II) catalysts is highly diverse, and can enable the synthesis of many different molecular classes. A tool to aid in catalyst selection, independent of mechanism and reactivity, would therefore be highly desirable. Here, we describe the development of a database for dirhodium(II) catalysts that is based on the principal component analysis of DFT‐calculated parameters capturing their steric and electronic properties. This database maps the relevant catalyst space, and may facilitate exploration of the reactivity landscape for any process catalysed by dirhodium(II) complexes. We have shown that one of the principal components of these catalysts correlates with the outcome (e.g. yield, selectivity) of a transformation used in a molecular discovery project. Furthermore, we envisage that this approach will assist the selection of more effective catalyst screening sets, and, hence, the data‐led optimisation of a wide range of rhodium‐catalysed transformations.
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