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Carbon-Hydrogen Bond and Carbon-Carbon Bond Activation of Alkanes with Rhodium Porphyrins.

机译:铑卟啉对烷烃的碳氢键和碳碳键活化作用。

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摘要

The objectives of this research focus on the investigation of carbon-hydrogen bond activation (CHA) and carbon-carbon bond activation (CCA) of alkanes by rhodium porphyrin complexes as well as the mechanistic understanding.;Base-promoted CHA of unstrained alkanes with 5,10,15,20-tetratolylporphyrinatorhodium complexes, Rh(ttp)X (X = Cl, H, Rh(ttp)), has been achieved. Rh(ttp)Cl, reacted with n-pentane, n-hexane, n-heptane, c-pentane and c-hexane in the presence of potassium carbonate at 120 °C in 6 to 24 h to give rhodium porphyrin alkyls, Rh(ttp)R, in 29--76% yields. Mechanistic investigations suggested that Rh 2(ttp)2 and Rh(ttp)H are key intermediates for the parallel CHA step. The roles of base are (i) to facilitate the formation of Rh(ttp)Y (Y- = OH-, KCO3 -), (ii) to enhance the CHA rate with alkane and generate Rh(ttp)H by a Rh(ttp)Y species which is more reactive than Rh(ttp)Cl, and (iii) to provide a parallel CHA pathway by Rh2(ttp)2.;K2CO3-promoted CHA of the ring-strained cycloheptane with Rh(ttp)Cl at 120 °C in 6 h gave the CHA product Rh(ttp)( c-heptyl) and together with, unexpectedly, the CCA product Rh(ttp)Bn, in 30% and 24% yields, respectively. Mechanistic studies revealed that Rh(ttp)( c-heptyl) undergoes beta-hydride elimination in neutral condition or beta-proton elimination in basic condition followed by reprotonation to give rhodium(III) porphyrin hydride, Rh(ttp)H, and c-heptene. Successive base-promoted CHA of c-heptene with Rh(ttp)H, followed by beta-proton elimination, generates cycloheptatriene. The CHA of cycloheptatriene with Rh(ttp)H formed Rh(ttp)(c-heptatrienyl), which underwent rearrangement with carbon-carbon cleavage at 120 °C in 16 d to yield Rh(ttp)Bn in 96% yield.;c-Octane reacted with Rh(ttp)Cl at 120 °C in 7.5 h in the presence of K2CO3 to yield Rh(ttp)( n-octyl) and Rh(ttp)H in 33% and 58% yields, respectively. Mechanistic investigations indicate that the CCA product is generated from the Rh II(ttp)-catalyzed 1,2-addition of c-octane with Rh(ttp)H. Reaction of c-octane and Rh(ttp)H/Rh2(ttp) 2 (10:1) selectively yielded Rh(ttp)(n-octyl) in 73% at 120 °C in 15 h. The catalyst RhII(ttp) radical cleaves the C-C bond of c-octane to form to a Rh(ttp)-alkyl radical, which then abstracts a hydrogen atom from Rh(ttp)H to generate the Rh(ttp)( n-octyl), and subsequently leading to regeneration of the Rh II(ttp) radical. (Abstract shortened by UMI.).
机译:这项研究的目的集中在研究铑卟啉配合物对烷烃的碳氢键活化(CHA)和碳-碳键活化(CCA)以及机理的理解。碱促进的5链烷烃已经获得了10,15,20-四甲苯基卟啉亚铑络合物Rh(ttp)X(X = Cl,H,Rh(ttp))。 Rh(ttp)Cl在碳酸钾存在下于120°C下与正戊烷,正己烷,正庚烷,正戊烷和正己烷反应6至24小时,得到铑卟啉烷基,Rh( ttp)R,产率为29--76%。机理研究表明,Rh 2(ttp)2和Rh(ttp)H是平行CHA步骤的关键中间体。碱的作用是(i)促进Rh(ttp)Y(Y- = OH-,KCO3--)的形成,(ii)增强烷烃的CHA速率并由Rh(Rh)生成Rh(ttp)H ttp)Y物种比Rh(ttp)Cl更具反应性,并且(iii)通过Rh2(ttp)2提供平行的CHA途径; K2CO3-促进环应变环庚烷的CHA与Rh(ttp)Cl在120℃在6小时内得到CHA产物Rh(ttp)(c-庚基),以及出乎意料的CCA产物Rh(ttp)Bn,产率分别为30%和24%。机理研究表明,Rh(ttp)(c-庚基)在中性条件下进行β-氢化物消除,在碱性条件下进行β-质子消除,然后再质子化,生成铑(III)卟啉氢化物,Rh(ttp)H和c-庚烯。 c-庚烯与Rh(ttp)H的连续碱促进的CHA,然后消除β-质子,生成环庚三烯。环庚三烯与Rh(ttp)H的CHA形成Rh(ttp)(c-庚三烯基),在120℃下16 d碳-碳裂解将其进行重排,从而以96%的产率产生Rh(ttp)Bn。 -正辛烷与KhCO3存在下于120°C在7.5 h下与Rh(ttp)Cl反应,分别以33%和58%的产率生成Rh(ttp)(n-辛基)和Rh(ttp)H。机理研究表明,CCA产物是由Rh II(ttp)催化的正辛烷与Rh(ttp)H的1,2-加成反应生成的。 c-辛烷与Rh(ttp)H / Rh2(ttp)2(10:1)的反应在120℃下于15小时内选择性产生73%的Rh(ttp)(n-辛基)。催化剂RhII(ttp)自由基裂解正辛烷的CC键形成Rh(ttp)-烷基自由基,然后从Rh(ttp)H提取氢原子以生成Rh(ttp)(n-辛基) ),随后导致Rh II(ttp)自由基的再生。 (摘要由UMI缩短。)。

著录项

  • 作者

    Chan, Yun Wai.;

  • 作者单位

    The Chinese University of Hong Kong (Hong Kong).;

  • 授予单位 The Chinese University of Hong Kong (Hong Kong).;
  • 学科 Organic chemistry.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 227 p.
  • 总页数 227
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:37:07

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