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Coordination Chemistry of P(4)S(3) and P(4)Se(3) towards the Iron Fragments [Fe(Cp)(CO)(2)](+) and [Fe(Cp)(PPh(3))(CO)](+)

The complexes Ag(L)(n)[WCA] (L=P(4)S(3), P(4)Se(3), As(4)S(3), and As(4)S(4); [WCA]=[Al(OR(F))(4)](−) and [F{Al(OR(F))(3)}(2)](−); R(F)=C(CF(3))(3); WCA=weakly coordinating anion) were tested for their performance as ligand‐transfer reagents to transfer the poorly soluble nortricyclane cages P(4)S(3...

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Autores principales: Weis, Philippe, Riddlestone, Ian M., Scherer, Harald, Krossing, Ingo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6771638/
https://www.ncbi.nlm.nih.gov/pubmed/31287589
http://dx.doi.org/10.1002/chem.201902339
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author Weis, Philippe
Riddlestone, Ian M.
Scherer, Harald
Krossing, Ingo
author_facet Weis, Philippe
Riddlestone, Ian M.
Scherer, Harald
Krossing, Ingo
author_sort Weis, Philippe
collection PubMed
description The complexes Ag(L)(n)[WCA] (L=P(4)S(3), P(4)Se(3), As(4)S(3), and As(4)S(4); [WCA]=[Al(OR(F))(4)](−) and [F{Al(OR(F))(3)}(2)](−); R(F)=C(CF(3))(3); WCA=weakly coordinating anion) were tested for their performance as ligand‐transfer reagents to transfer the poorly soluble nortricyclane cages P(4)S(3), P(4)Se(3), and As(4)S(3) as well as realgar As(4)S(4) to different transition‐metal fragments. As(4)S(4) and As(4)S(3) with the poorest solubility did not yield complexes. However, the more soluble silver‐coordinated P(4)S(3) and P(4)Se(3) cages were transferred to the electron‐poor Fp (+) moiety ([CpFe(CO)(2)](+)). Thus, reaction of the silver salt in the presence of the ligand with Fp−Br yielded [Fp−P(4)S(3)][Al(OR(F))(4)] (1 a), [Fp−P(4)S(3)][F(Al(OR(F))(3))(2)] (1 b), and [Fp−P(4)Se(3)][Al(OR(F))(4)] (2). Reactions with P(4)S(3) also yielded [FpPPh(3)−P(4)S(3)][Al(OR(F))(4)] (3), a complex with the more electron‐rich monophosphine‐substituted Fp (+) analogue [FpPPh(3)](+) ([CpFe(PPh(3))(CO)](+)). All complex salts were characterized by single‐crystal XRD, NMR, Raman, and IR spectroscopy. Interestingly, they show characteristic blueshifts of the vibrational modes of the cage, as well as structural contractions of the cages upon coordination to the Fp/FpPPh(3) moieties, which oppose the typically observed cage expansions that lead to redshifts in the spectra. Structure, bonding, and thermodynamics were investigated by DFT calculations, which support the observed cage contractions. Its reason is assigned to σ and π donation from the slightly P−P and P−E antibonding P(4)E(3)‐cage HOMO (e symmetry) to the metal acceptor fragment.
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spelling pubmed-67716382019-10-03 Coordination Chemistry of P(4)S(3) and P(4)Se(3) towards the Iron Fragments [Fe(Cp)(CO)(2)](+) and [Fe(Cp)(PPh(3))(CO)](+) Weis, Philippe Riddlestone, Ian M. Scherer, Harald Krossing, Ingo Chemistry Full Papers The complexes Ag(L)(n)[WCA] (L=P(4)S(3), P(4)Se(3), As(4)S(3), and As(4)S(4); [WCA]=[Al(OR(F))(4)](−) and [F{Al(OR(F))(3)}(2)](−); R(F)=C(CF(3))(3); WCA=weakly coordinating anion) were tested for their performance as ligand‐transfer reagents to transfer the poorly soluble nortricyclane cages P(4)S(3), P(4)Se(3), and As(4)S(3) as well as realgar As(4)S(4) to different transition‐metal fragments. As(4)S(4) and As(4)S(3) with the poorest solubility did not yield complexes. However, the more soluble silver‐coordinated P(4)S(3) and P(4)Se(3) cages were transferred to the electron‐poor Fp (+) moiety ([CpFe(CO)(2)](+)). Thus, reaction of the silver salt in the presence of the ligand with Fp−Br yielded [Fp−P(4)S(3)][Al(OR(F))(4)] (1 a), [Fp−P(4)S(3)][F(Al(OR(F))(3))(2)] (1 b), and [Fp−P(4)Se(3)][Al(OR(F))(4)] (2). Reactions with P(4)S(3) also yielded [FpPPh(3)−P(4)S(3)][Al(OR(F))(4)] (3), a complex with the more electron‐rich monophosphine‐substituted Fp (+) analogue [FpPPh(3)](+) ([CpFe(PPh(3))(CO)](+)). All complex salts were characterized by single‐crystal XRD, NMR, Raman, and IR spectroscopy. Interestingly, they show characteristic blueshifts of the vibrational modes of the cage, as well as structural contractions of the cages upon coordination to the Fp/FpPPh(3) moieties, which oppose the typically observed cage expansions that lead to redshifts in the spectra. Structure, bonding, and thermodynamics were investigated by DFT calculations, which support the observed cage contractions. Its reason is assigned to σ and π donation from the slightly P−P and P−E antibonding P(4)E(3)‐cage HOMO (e symmetry) to the metal acceptor fragment. John Wiley and Sons Inc. 2019-08-23 2019-09-18 /pmc/articles/PMC6771638/ /pubmed/31287589 http://dx.doi.org/10.1002/chem.201902339 Text en © 2019 The Authors. Published by Wiley-VCH Verlag GmbH & Co. KGaA. This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Full Papers
Weis, Philippe
Riddlestone, Ian M.
Scherer, Harald
Krossing, Ingo
Coordination Chemistry of P(4)S(3) and P(4)Se(3) towards the Iron Fragments [Fe(Cp)(CO)(2)](+) and [Fe(Cp)(PPh(3))(CO)](+)
title Coordination Chemistry of P(4)S(3) and P(4)Se(3) towards the Iron Fragments [Fe(Cp)(CO)(2)](+) and [Fe(Cp)(PPh(3))(CO)](+)
title_full Coordination Chemistry of P(4)S(3) and P(4)Se(3) towards the Iron Fragments [Fe(Cp)(CO)(2)](+) and [Fe(Cp)(PPh(3))(CO)](+)
title_fullStr Coordination Chemistry of P(4)S(3) and P(4)Se(3) towards the Iron Fragments [Fe(Cp)(CO)(2)](+) and [Fe(Cp)(PPh(3))(CO)](+)
title_full_unstemmed Coordination Chemistry of P(4)S(3) and P(4)Se(3) towards the Iron Fragments [Fe(Cp)(CO)(2)](+) and [Fe(Cp)(PPh(3))(CO)](+)
title_short Coordination Chemistry of P(4)S(3) and P(4)Se(3) towards the Iron Fragments [Fe(Cp)(CO)(2)](+) and [Fe(Cp)(PPh(3))(CO)](+)
title_sort coordination chemistry of p(4)s(3) and p(4)se(3) towards the iron fragments [fe(cp)(co)(2)](+) and [fe(cp)(pph(3))(co)](+)
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6771638/
https://www.ncbi.nlm.nih.gov/pubmed/31287589
http://dx.doi.org/10.1002/chem.201902339
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