Synthesis, Structure, and Applications of α-Cationic Phosphines

被引:101
|
作者
Alcarazo, Manuel [1 ]
机构
[1] Univ Gottingen, Inst Organ & Biomol Chem, Tammannstr 2, D-37077 Gottingen, Germany
基金
欧洲研究理事会;
关键词
STABILIZED PHOSPHENIUM ADDUCTS; PAIRED CHIRAL LIGANDS; COORDINATION CHEMISTRY; DONOR PROPERTIES; REACTIVITY; COMPLEXES; 2-IMIDAZOLIUM; PHOSPHORUS; CATALYSIS; PLATINUM;
D O I
10.1021/acs.accounts.6b00262
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In alpha-cationic phosphines, at least one of the three substituents on phosphorus corresponds to a cationic (normally, but not always heteroaromatic) group, which is attached without any spacer to the phosphorus atom by a relatively inert PC bond. This unique architecture confers to the resulting ligand strong acceptor properties, which frequently surpass those of traditional acceptor ligands such as phosphites or polyfluorinated phosphines. In addition, the fine-tuning of the stereoelectronic properties of alpha-cationic phosphines is also possible by judicious selection of the number and nature of the cationic groups. The opportunities offered in catalysis by alpha-cationic ligands arise from this ability to deplete electron density from the metals they coordinate. Thus, if in a hypothetical catalytic cycle the step that determines the rate is facilitated by an increase of the Lewis acidity at the metal center, then an acceleration of the whole process is expected by their use as ancillary ligands. Interestingly, this situation is found more frequently than one might think; many common elementary steps involved in catalytic cycles, such as reductive eliminations, coordination of substrates to metals, or attack of nucleophiles to coordinated substrates, belong to this category and are often fostered by electron poor metal centers. In this regard, our group has observed remarkable ligand acceleration effects by the employment of alpha-cationic phosphines in Au(I)- and Pt(II)-promoted hydroarylation and cycloisomerization reactions. These results seem to be general in p-acid catalysis when the nucleophile used is not especially electron rich because then their attack to the activated alkene or alkyne is normally rate determining. On the other hand, the use of cationic phosphines also presents drawbacks that limit their range of application. As a general rule, the reduced sigma-donation from the phosphine is not compensated by the increased pi-back-donation from the metal making the resulting phosphorusmetal bond weaker, and the corresponding catalysts more prone to decomposition. This can be critical when di- or tricationic ancillary ligands are used. In addition, the positively charged groups occasionally participate in undesired side reactions, with either the metal or the substrate, which are not present when their neutral congeners are used. Stimulated by both the fundamental questions regarding bonding and their valuable applications in catalysis, the chemistry of a-cationic phosphines has experienced an enormous growth during the last years. This Account describes our groups efforts and those of others to understand their coordination behavior, study their reactivity, and further develop their range of applications in catalysis.
引用
收藏
页码:1797 / 1805
页数:9
相关论文
共 50 条
  • [31] Synthesis and structure of the first discrete dinuclear cationic aluminum complexes
    Wang, Xingbao
    Dorcet, Vincent
    Luo, Yi
    Carpentier, Jean-Francois
    Kirillov, Evgueni
    DALTON TRANSACTIONS, 2016, 45 (31) : 12346 - 12351
  • [32] Cationic Au(I) alkyne complexes: synthesis, structure and reactivity
    Hooper, Thomas N.
    Green, Michael
    Russell, Christopher A.
    CHEMICAL COMMUNICATIONS, 2010, 46 (13) : 2313 - 2315
  • [33] Chiral Gold(III) Complexes: Synthesis, Structure, and Potential Applications
    Jouhannet, Remi
    Dagorne, Samuel
    Blanc, Aurelien
    de Fremont, Pierre
    CHEMISTRY-A EUROPEAN JOURNAL, 2021, 27 (36) : 9218 - 9240
  • [34] Preparation and Molecular Structure of a Cationic Bisplumbylene
    Kargin, Denis
    Krekic, Kristijan
    Pietschnig, Rudolf
    EUROPEAN JOURNAL OF INORGANIC CHEMISTRY, 2019, 2019 (11-12) : 1650 - 1656
  • [35] Synthesis, Structure, Reactivity and Catalytic Implications of a Cationic, Acetylide-Bridged Trigold-JohnPhos Species
    Grirrane, Abdessamad
    Alvarez, Eleuterio
    Garcia, Hermenegildo
    Corma, Avelino
    CHEMISTRY-A EUROPEAN JOURNAL, 2020, 26 (40) : 8810 - 8818
  • [36] Synthesis and Characterization of a Family of Air-Stable Ferrocene- and Ruthenocene-Containing Primary, Secondary, and Tertiary Phosphines
    Kenaree, Amir Rabiee
    Cuthbert, Tyler J.
    Barbon, Stephanie M.
    Boyle, Paul D.
    Gillies, Elizabeth R.
    Ragogna, Paul J.
    Gilroy, Joe B.
    ORGANOMETALLICS, 2015, 34 (17) : 4272 - 4280
  • [37] Mono cationic palladium(II): Synthesis, characterization and catalytic activity in Suzuki coupling
    Pratihar, Sanjay
    Marek, Jaromir
    Roy, Sujit
    INORGANICA CHIMICA ACTA, 2011, 372 (01) : 362 - 366
  • [38] Simple tertiary phosphines to hexaphosphane ligands: Syntheses, transition metal chemistry and their catalytic applications
    Balakrishna, Maravanji S.
    Rao, Sowmya
    Choubey, Bimba
    JOURNAL OF CHEMICAL SCIENCES, 2012, 124 (06) : 1191 - 1204
  • [39] Applications of 31P NMR spectroscopy in development of M(Duphos)-catalyzed asymmetric synthesis of P-stereogenic phosphines (M = Pt or Pd)
    Glueck, David S.
    COORDINATION CHEMISTRY REVIEWS, 2008, 252 (21-22) : 2171 - 2179
  • [40] Enantiodivergent synthesis of P-chirogenic phosphines
    Chaux, Fanny
    Frynas, Slawomir
    Laureano, Hugo
    Salomon, Christine
    Morata, Gerald
    Auclair, Marie-Laure
    Stephan, Michel
    Merdes, Rachid
    Richard, Philippe
    Ondel-Eymin, Marie-Jo
    Henry, Jean-Christophe
    Bayardon, Jerome
    Darcel, Christophe
    Juge, Sylvain
    COMPTES RENDUS CHIMIE, 2010, 13 (8-9) : 1213 - 1226