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Ylide-Substituted Phosphines with a Cyclic Ylide-Backbone: Angle Dependence of the Donor Strength

[Image: see text] Ylide-substituted phosphines (YPhos) have been shown to be highly electron-rich and efficient ligands in a variety of palladium catalyzed transformations. Here, the synthesis and characterization of novel YPhos ligands containing a cyclic backbone architecture are reported. The lig...

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Autores principales: Löffler, Julian, Gauld, Richard M., Feichtner, Kai-Stephan, Rodstein, Ilja, Zur, Jana-Alina, Handelmann, Jens, Schwarz, Christopher, Gessner, Viktoria H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8385760/
https://www.ncbi.nlm.nih.gov/pubmed/34475611
http://dx.doi.org/10.1021/acs.organomet.1c00349
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author Löffler, Julian
Gauld, Richard M.
Feichtner, Kai-Stephan
Rodstein, Ilja
Zur, Jana-Alina
Handelmann, Jens
Schwarz, Christopher
Gessner, Viktoria H.
author_facet Löffler, Julian
Gauld, Richard M.
Feichtner, Kai-Stephan
Rodstein, Ilja
Zur, Jana-Alina
Handelmann, Jens
Schwarz, Christopher
Gessner, Viktoria H.
author_sort Löffler, Julian
collection PubMed
description [Image: see text] Ylide-substituted phosphines (YPhos) have been shown to be highly electron-rich and efficient ligands in a variety of palladium catalyzed transformations. Here, the synthesis and characterization of novel YPhos ligands containing a cyclic backbone architecture are reported. The ligands are easily synthesized from a cyclic phosphonium salt and the chlorophosphines Cy(2)PCl (L1) and Cy(Flu(Me))PCl (L2, with Flu(Me) = 9-methylfluorenyl) and were characterized in both solution and solid states. The smaller PCy(2)-substituted ligand, L1, readily formed the biscoordinate L1(2)Pd species when treated with Pd(2)(dba)(3) and showed no activity in palladium-catalyzed amination reactions even when applied as defined palladium(II) η(3)-allyl, t-Bu-indenyl, or cinnamyl precursors. Bulkier fluorenyl-substituted ligand L2 similarly was inactive, despite its ability to form the stable monophosphine complex L2·Pd(dba). Assessment of the electronic properties by experimental and computational methods revealed that L1 and L2 are considerably less electron-rich than previously synthesized YPhos ligands. This was shown to be the result of the small P–C–S bond angle, which is sterically enforced due to the cyclic nature of the backbone. Density functional theory calculations revealed that the small angle results in an increased s-character of the lone pair at the ylidic carbon atom and leads to a polarization of the C–P bond toward the carbon atom, thus decreasing the electron density at the phosphorus atom. The results demonstrate the tunability of the donor strength of YPhos ligands by modification of the ligand backbone beyond simple changes of the substitution pattern and are thus important for future ligand design, with a careful balance of many factors to be considered to achieve catalytic activity.
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spelling pubmed-83857602021-08-31 Ylide-Substituted Phosphines with a Cyclic Ylide-Backbone: Angle Dependence of the Donor Strength Löffler, Julian Gauld, Richard M. Feichtner, Kai-Stephan Rodstein, Ilja Zur, Jana-Alina Handelmann, Jens Schwarz, Christopher Gessner, Viktoria H. Organometallics [Image: see text] Ylide-substituted phosphines (YPhos) have been shown to be highly electron-rich and efficient ligands in a variety of palladium catalyzed transformations. Here, the synthesis and characterization of novel YPhos ligands containing a cyclic backbone architecture are reported. The ligands are easily synthesized from a cyclic phosphonium salt and the chlorophosphines Cy(2)PCl (L1) and Cy(Flu(Me))PCl (L2, with Flu(Me) = 9-methylfluorenyl) and were characterized in both solution and solid states. The smaller PCy(2)-substituted ligand, L1, readily formed the biscoordinate L1(2)Pd species when treated with Pd(2)(dba)(3) and showed no activity in palladium-catalyzed amination reactions even when applied as defined palladium(II) η(3)-allyl, t-Bu-indenyl, or cinnamyl precursors. Bulkier fluorenyl-substituted ligand L2 similarly was inactive, despite its ability to form the stable monophosphine complex L2·Pd(dba). Assessment of the electronic properties by experimental and computational methods revealed that L1 and L2 are considerably less electron-rich than previously synthesized YPhos ligands. This was shown to be the result of the small P–C–S bond angle, which is sterically enforced due to the cyclic nature of the backbone. Density functional theory calculations revealed that the small angle results in an increased s-character of the lone pair at the ylidic carbon atom and leads to a polarization of the C–P bond toward the carbon atom, thus decreasing the electron density at the phosphorus atom. The results demonstrate the tunability of the donor strength of YPhos ligands by modification of the ligand backbone beyond simple changes of the substitution pattern and are thus important for future ligand design, with a careful balance of many factors to be considered to achieve catalytic activity. American Chemical Society 2021-08-04 2021-08-23 /pmc/articles/PMC8385760/ /pubmed/34475611 http://dx.doi.org/10.1021/acs.organomet.1c00349 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Löffler, Julian
Gauld, Richard M.
Feichtner, Kai-Stephan
Rodstein, Ilja
Zur, Jana-Alina
Handelmann, Jens
Schwarz, Christopher
Gessner, Viktoria H.
Ylide-Substituted Phosphines with a Cyclic Ylide-Backbone: Angle Dependence of the Donor Strength
title Ylide-Substituted Phosphines with a Cyclic Ylide-Backbone: Angle Dependence of the Donor Strength
title_full Ylide-Substituted Phosphines with a Cyclic Ylide-Backbone: Angle Dependence of the Donor Strength
title_fullStr Ylide-Substituted Phosphines with a Cyclic Ylide-Backbone: Angle Dependence of the Donor Strength
title_full_unstemmed Ylide-Substituted Phosphines with a Cyclic Ylide-Backbone: Angle Dependence of the Donor Strength
title_short Ylide-Substituted Phosphines with a Cyclic Ylide-Backbone: Angle Dependence of the Donor Strength
title_sort ylide-substituted phosphines with a cyclic ylide-backbone: angle dependence of the donor strength
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8385760/
https://www.ncbi.nlm.nih.gov/pubmed/34475611
http://dx.doi.org/10.1021/acs.organomet.1c00349
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