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Brønsted acid catalysis – the effect of 3,3′-substituents on the structural space and the stabilization of imine/phosphoric acid complexes

BINOL derived chiral phosphoric acids (CPAs) are widely known for their high selectivity. Numerous 3,3′-substituents are used for a variety of stereoselective reactions and theoretical models of their effects are provided. However, experimental data about the structural space of CPA complexes in sol...

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Autores principales: Melikian, Maxime, Gramüller, Johannes, Hioe, Johnny, Greindl, Julian, Gschwind, Ruth M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6540909/
https://www.ncbi.nlm.nih.gov/pubmed/31191877
http://dx.doi.org/10.1039/c9sc01044k
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author Melikian, Maxime
Gramüller, Johannes
Hioe, Johnny
Greindl, Julian
Gschwind, Ruth M.
author_facet Melikian, Maxime
Gramüller, Johannes
Hioe, Johnny
Greindl, Julian
Gschwind, Ruth M.
author_sort Melikian, Maxime
collection PubMed
description BINOL derived chiral phosphoric acids (CPAs) are widely known for their high selectivity. Numerous 3,3′-substituents are used for a variety of stereoselective reactions and theoretical models of their effects are provided. However, experimental data about the structural space of CPA complexes in solution is extremely rare and so far restricted to NMR investigations of binary TRIP/imine complexes featuring two E- and two Z-imine conformations. Therefore, in this paper the structural space of 16 CPA/imine binary complexes is screened and 8 of them are investigated in detail by NMR. For the first time dimers of CPA/imine complexes in solution were experimentally identified, which show an imine position similar to the transition state in transfer hydrogenations. Furthermore, our experimental and computational data revealed an astonishing invariance of the four core structures regardless of the different steric and electronic properties of the 3,3′-substituent. However, a significant variation of E/Z-ratios is observed, demonstrating a strong influence of the 3,3′-substituents on the stabilization of the imine in the complexes. These experimental E/Z-ratios cannot be reproduced by calculations commonly applied for mechanistic studies, despite extensive conformational scans and treatment of the electronic structure at a high level of theory with various implicit solvent corrections. Thus, these first detailed experimental data about the structural space and influence of the 3,3′-substituent on the energetics of CPA/imine complexes can serve as basis to validate and improve theoretical predictive models.
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spelling pubmed-65409092019-06-12 Brønsted acid catalysis – the effect of 3,3′-substituents on the structural space and the stabilization of imine/phosphoric acid complexes Melikian, Maxime Gramüller, Johannes Hioe, Johnny Greindl, Julian Gschwind, Ruth M. Chem Sci Chemistry BINOL derived chiral phosphoric acids (CPAs) are widely known for their high selectivity. Numerous 3,3′-substituents are used for a variety of stereoselective reactions and theoretical models of their effects are provided. However, experimental data about the structural space of CPA complexes in solution is extremely rare and so far restricted to NMR investigations of binary TRIP/imine complexes featuring two E- and two Z-imine conformations. Therefore, in this paper the structural space of 16 CPA/imine binary complexes is screened and 8 of them are investigated in detail by NMR. For the first time dimers of CPA/imine complexes in solution were experimentally identified, which show an imine position similar to the transition state in transfer hydrogenations. Furthermore, our experimental and computational data revealed an astonishing invariance of the four core structures regardless of the different steric and electronic properties of the 3,3′-substituent. However, a significant variation of E/Z-ratios is observed, demonstrating a strong influence of the 3,3′-substituents on the stabilization of the imine in the complexes. These experimental E/Z-ratios cannot be reproduced by calculations commonly applied for mechanistic studies, despite extensive conformational scans and treatment of the electronic structure at a high level of theory with various implicit solvent corrections. Thus, these first detailed experimental data about the structural space and influence of the 3,3′-substituent on the energetics of CPA/imine complexes can serve as basis to validate and improve theoretical predictive models. Royal Society of Chemistry 2019-04-08 /pmc/articles/PMC6540909/ /pubmed/31191877 http://dx.doi.org/10.1039/c9sc01044k Text en This journal is © The Royal Society of Chemistry 2019 https://creativecommons.org/licenses/by-nc/3.0/This article is freely available. This article is licensed under a Creative Commons Attribution Non Commercial 3.0 Unported Licence (CC BY-NC 3.0)
spellingShingle Chemistry
Melikian, Maxime
Gramüller, Johannes
Hioe, Johnny
Greindl, Julian
Gschwind, Ruth M.
Brønsted acid catalysis – the effect of 3,3′-substituents on the structural space and the stabilization of imine/phosphoric acid complexes
title Brønsted acid catalysis – the effect of 3,3′-substituents on the structural space and the stabilization of imine/phosphoric acid complexes
title_full Brønsted acid catalysis – the effect of 3,3′-substituents on the structural space and the stabilization of imine/phosphoric acid complexes
title_fullStr Brønsted acid catalysis – the effect of 3,3′-substituents on the structural space and the stabilization of imine/phosphoric acid complexes
title_full_unstemmed Brønsted acid catalysis – the effect of 3,3′-substituents on the structural space and the stabilization of imine/phosphoric acid complexes
title_short Brønsted acid catalysis – the effect of 3,3′-substituents on the structural space and the stabilization of imine/phosphoric acid complexes
title_sort brønsted acid catalysis – the effect of 3,3′-substituents on the structural space and the stabilization of imine/phosphoric acid complexes
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6540909/
https://www.ncbi.nlm.nih.gov/pubmed/31191877
http://dx.doi.org/10.1039/c9sc01044k
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