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Transition Metal Complexes and Main Group Frustrated Lewis Pairs for Stoichiometric and Catalytic Phosphorus-Phosphorus and Hydrogen-Hydrogen Bond Activation.

机译:化学计量和催化磷-磷和氢-氢键活化的过渡金属配合物和主基团受阻的路易斯对。

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摘要

Stoichiometric and catalytic small molecule activation reactions are vital for the synthesis of new materials. The activation of phosphorus-hydrogen or phosphorus-phosphorus bonds allows for the facile synthesis of new phosphorus-containing molecules for a wide variety of applications.1.;Following the discovery in 2006 that a linked phosphine-borane system could reversibly activate hydrogen2 a tremendous effort has been put forth to understand and expand this unprecedented reactivity. 3,4 This new archetype for metal-free small molecule activation, containing a bulky Lewis acid and Lewis base which are unable to bond directly due to steric repulsion, has been termed a "frustrated Lewis pair" (FLP). 3,4.;The FLP concept is expanded to include bulky P-P bound species, pyridines and P-O bound Lewis bases as partners for B(C6F5)3. In some cases small molecule activation produced ion pairs or zwitterions related to those found for reactions with tertiary phosphines,3,4 but in others novel reaction pathways were discovered including phosphorus-phosphorus bond cleavage, catalytic hydrogenations and the formation of novel intramolecular FLPs. An unexpected situation was observed for the pair of 2,6-lutidine with B(C6F5) 3, where adduct formation was observed along with free Lewis acid and base, but H2 activation by the FLP proceeded smoothly.;Covalently bound phosphinoboranes of the general formula R2PB(C 6F5)2 are synthesized. While systems with small R groups dimerized, monomers existed for cases with bulkier R groups. These monomers were found to exhibit extraordinarily short phosphorus-boron bonds yet were still capable of H2 activation analogous to bimolecular phosphine-borane systems. These systems also showed unique reactivity with Lewis acids and Lewis bases.;An investigation of the P-H dehydrocoupling reaction was undertaken utilizing two rhodium(I) based catalysts. Over the course of this investigation it was found that the Rh(I) systems were also active catalysts for the reverse reaction: phosphorus-phosphorus bond hydrogenation (and hydrosilylation). This reaction was exploited for the synthesis of novel phosphines from P-P bound species. Molecules with P-P bonds were reacted in a stoichiometric fashion with the catalyst precursor, producing a variety of novel species with interesting bonding features which shed some light on the reaction mechanism.;This work further demonstrates the broad and general utility of the FLP concept in the synthesis of new materials and in catalytic transformations.
机译:化学计量和催化小分子活化反应对于合成新材料至关重要。磷-氢或磷-磷键的激活可以轻松地合成适用于各种应用的新型含磷分子1 .; 2006年发现连接的膦-硼烷系统可以可逆地激活氢2已经做出努力来理解和扩展这种空前的反应性。 3,4这种无金属小分子活化的新原型,包含庞大的路易斯酸和路易斯碱,由于空间排斥而无法直接键合,因此被称为“沮丧的路易斯对”(FLP)。 3,4。; FLP概念被扩展为包括庞大的P-P结合物种,吡啶和P-O结合的Lewis碱作为B(C6F5)3的伴侣。在某些情况下,小分子活化产生的离子对或两性离子与与叔膦的反应有关[3,4],但在另一些情况下,发现了新的反应途径,包括磷-磷键裂解,催化加氢和形成新的分子内FLP。对于2,6-lutidine与B(C6F5)3的配对,观察到了意外情况,在其中观察到加合物的形成以及游离的路易斯酸和碱,但FLP的H2活化进展顺利。合成式R2PB(C 6F5)2。当具有小的R基团的系统二聚时,对于具有更大的R基团的情况存在单体。发现这些单体表现出非常短的磷-硼键,但仍具有类似于双分子膦-硼烷体系的H 2活化能力。这些体系还显示出与路易斯酸和路易斯碱的独特反应性。使用两种铑(I)基催化剂对P-H脱氢偶联反应进行了研究。在此研究过程中,发现Rh(I)系统也是逆反应的活性催化剂:磷-磷键加氢(和氢化硅烷化)。该反应被用于从P-P结合的物种合成新的膦。具有PP键的分子以化学计量的方式与催化剂前体反应,产生了具有有趣的键合特征的各种新型物质,从而为反应机理提供了一些亮点;这项工作进一步证明了FLP概念在催化中的广泛和通用性。合成新材料并进行催化转化。

著录项

  • 作者

    Geier, Stephen Joseph.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Chemistry Inorganic.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 187 p.
  • 总页数 187
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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