Literature DB >> 27166027

Proton Affinities of Cationic Carbone Adducts [AC(PPh3 )2 ](+) (A=Halogen, Hydrogen, Methyl) and Unusual Electronic Structures of the Cations and Dications [AC(H)(PPh3 )2 ](2.).

Wolfgang Petz1, Istemi Kuzu2, Gernot Frenking3, Diego M Andrada4, Bernhard Neumüller5, Maximilian Fritz4, Jörn E Münzer4.   

Abstract

This work reports the syntheses and the first crystal structures of the cationic carbone adducts [FC(PPh3 )2 ](+) and [BrC(PPh3 )2 ](+) and the protonated dication [FC(H)(PPh3 )2 ](2+) , which are derived from the carbone C(PPh3 )2 . Quantum chemical calculations and bonding analyses were carried out for the series of cations [AC(PPh3 )2 ](+) and dications [AC(H)(PPh3 )2 ](2+) , where A=H, Me, F, Cl, Br, I. The bonding analysis suggests that the cations are best described as phosphane complexes L→(CA)(+) ←L (L=PPh3 ), which are related to the neutral borylene adducts L→(BA)←L (L=cyclic carbene; A=H, aryl) that were recently isolated. The carbone adducts [AC(PPh3 )2 ](+) possess a π electron lone pair at carbon and they can easily be protonated to the dications [AC(H)(PPh3 )2 ](2+) . The calculations of the dications indicate that the molecules are best represented as complexes L→(CHA)(2+) ←L (L=PPh3 ) where a carbene dication is stabilized by the ligands. The central carbon atom in the cations and even in the dications carries a negative partial charge, which is larger than the negative charge at fluorine. There is also the peculiar situation in which the carbon-fluorine bonds in [FC(PPh3 )2 ](+) and [FC(H)(PPh3 )2 ](2+) exhibit the expected polarity with the negative end at fluorine, but the carbon atom has a larger negative charge than fluorine. Given the similarity of carbodiphosphorane C(PPh3 )2 and carbodicarbene C(NHC)2 , we expect that analogous compounds [AC(NHC)2 ](+) and [AC(H)(NHC)2 ](2+) with similar features as [AC(PPh3 )2 ](+) and [AC(H)(PPh3 )2 ](2+) can be isolated.
© 2016 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.

Entities:  

Keywords:  bonding analysis; carbone adducts; proton affinities; quantum chemical calculations

Year:  2016        PMID: 27166027     DOI: 10.1002/chem.201600525

Source DB:  PubMed          Journal:  Chemistry        ISSN: 0947-6539            Impact factor:   5.236


  4 in total

1.  Ylide-Functionalization via Metalated Ylides: Synthesis and Structural Properties.

Authors:  Christopher Schwarz; Thorsten Scherpf; Ilja Rodstein; Julia Weismann; Kai-Stephan Feichtner; Viktoria H Gessner
Journal:  ChemistryOpen       Date:  2019-05-15       Impact factor: 2.911

2.  The Bonding Situation in Metalated Ylides.

Authors:  Lennart T Scharf; Diego M Andrada; Gernot Frenking; Viktoria H Gessner
Journal:  Chemistry       Date:  2017-03-07       Impact factor: 5.236

3.  Hollowing out MOFs: hierarchical micro- and mesoporous MOFs with tailorable porosity via selective acid etching.

Authors:  Jaehyoung Koo; In-Chul Hwang; Xiujun Yu; Subhadeep Saha; Yonghwi Kim; Kimoon Kim
Journal:  Chem Sci       Date:  2017-08-09       Impact factor: 9.825

4.  Cationic Phosphorus Compounds Based on a Bis(1-piperidinyl)-Substituted Carbodiphosphorane: Syntheses, Structures, and Csp3 -H Activation.

Authors:  Alexander Kroll; Henning Steinert; Mike Jörges; Tim Steinke; Bert Mallick; Viktoria H Gessner
Journal:  Organometallics       Date:  2020-08-26       Impact factor: 3.876

  4 in total

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