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Activation of nitrogen heterocycles towards the fundamental reactions of hydrodenitrogenation catalysis: Transition metal mediated carbon-nitrogen bond cleavage, hydrogenation, and ring degradation.

机译:氮杂环向加氢脱氮催化的基本反应的活化:过渡金属介导的碳-氮键裂解,氢化和环降解。

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摘要

Treatment of the η(N,C)-pyridine complex [η²(N,C)-2,4,6-NC₅ᵗBU₃H₂]TA(DIPP)₂Cl (DIPP = 2,6-diisopropylphenoxide) with LiBEt₃H affords the C-N bond scission product (DIPP)₂Ta(=NCᵗBu=CHCᵗBu=CHCHᵗBu) (4). Reaction of [η²(N,C)-2,4,6-NC₅ᵗBU₃H₂]TA(DIPP)₂Cl with the appropriate alkyl lithium or Grignard reagent provides the alkyl derivatives [η²(N,C)-2,4,6-NC₅ᵗBU₃H₂]TA(DIPP)₂R [R = Me (5); Et (6); ⁿPr (7); ⁿBu (8); Ph (9); CH₂SiMe₃ (10)] in high yield. The molecular structure of the ethyl complex, [η²(N,C)-2,4,6-NC₅ᵗBU₃H₂]TA(DIPP)₂Et (6) has been determined. Upon thermolyzing complexes 5 - 9, a metal-ta-pyridine ligand alkyl migration is effected and the C-N bond cleavage products (DIPP)₂Ta(=NCᵗBu=CHCᵗBu=CHCHᵗBuR) [R = Ph (11); Me (12); Et (13); ⁿPr (14); ⁿBu (15)] are formed. Kinetic and mechanistic studies of the 5 → 12 conversion, indicate that methyl migration is strictly intramolecular; thus a formal endo attack on the η²(N,C)-pyridine ligand has occurred. While (DIPP)₂Ta(=NCᵗBu=CHCᵗBu=CHCHᵗBu) (4) and (DIPP)₂Ta(=NCᵗBu=CHCᵗBu=CHCᵗBuPh) (11) are indefinitely stable and are structurally characterized, the β-hydrogen containing alkyl derivatives, (DIPP)₂Ta(=NCᵗBu=CHCᵗBu=CHCᵗBuCHR') [R' = H (12); Me(13); Et (14); ⁿPr (15)] decompose to provide the metallapyridine complex, [(DIPP₂Ta(μ- NCᵗBu=CHCᵗBu=CH)₂ (16) and the t-butyl-substituted alkenes ᵗBuCH=CHR', respectively. The structure of 16 is reported. Labelling studies reveal the source of the ᵗBuCH=CH₂ in the 5 → 12 → 16 conversion and the decomposition of 12 to 16 and ᵗBuCH=CH₂ is proposed to proceed via the eight-membered, ring-expansion isomer, (DIPP₂)Ta(=NCᵗBu=CHCᵗBu=CHCᵗBuCH₂) (17). An acetonitrile adduct of this intermediate, (DIPP)Ta(=NCᵗBu=CHCᵗBu=CHCᵗBuCH₂)(MeCN)₂ (17-MeCN), has been trapped. An overall mechanism for the decomposition (DIPP)₂Ta(=NCᵗBu=CHCᵗBu=CHCᵗBuCH₂R') [R' = H (12); Me(13); Et (14); ⁿPr (15)] to [(DIPP)₂Ta(μ-NCtBu=CHCᵗBu=CH)₂ (16) and ᵗBuCH=CHR', based on these observations, is proposed. The heterocyclic complexes [η¹(N)-QUIN]Ta(Oar)₃Cl₂ (18) and [η ¹(N)-6MQ]- Ta(Oar)₃Cl₂ (19) (QUIN = quinoline, and 6MQ = 6-methylquinoline) are prepared from Ta(Oar)₃Cl₂(OEt₂) and QUIN or 6MQ. [η¹(N)-6MQ]Ta(OAr)₂Cl₃ (20) is prepared similarly from Ta(OAr)₂Cl₃(OEt₂). Upon rapid, two-electron reduction of these complexes, an η¹(N) → η²(N,C) bonding rearrangement is effected and the thermally sensitive, d² species [η²(N,C)-QUIN]Ta(Oar)₃ (21), [η²(N,C)-6MQ]Ta(Oar)₃ (22), and [η²(N,C)-6MQ]Ta(OAr)₂- Cl(OEt₂) (25) can be isolated. The PME₃ adducts [η²(N,C)-QUIN]Ta(Oar)₃(PMe₃) (23) and [η²(N,C)-6MQ]Ta(Oar)₃(PMe₃) (24) can be prepared by simple coordination of PMe₃ to the base-free compounds 21 and 22. The quinoline ligand of [η²(N,C)-QUIN]Ta(Oar)₃ (21) is readily hydrogenated under mild reaction conditions to afford 1,2,3,4- tetrahydroquionline. When Ta(Oar)₂Cl₃(OEt₂) is reduced by one electron in the presence of QUIN or 6MQ, the d¹ bis(ligand) complexes [η¹(N)-6MQ]₂Ta(Oar)₂Cl₂ (26) and [η¹(N)- QUIN]₂Ta(OAr)₂Cl₂ (27) can be isolated. The relevance of these studies with respect to industrial hydrodenitrogenation (HDN) catalysis is discussed.
机译:用LiBEt₃H处理η(N,C)-吡啶配合物[η²(N,C)-2,4,6-NC₅ᵗBU₃H2] TA(DIPP)2 Cl(DIPP = 2,6-二异丙基苯氧基)得到CN键断裂产物(DIPP)2 Ta(= NC = Bu = CHC = Bu = CHCH = Bu)(4)。 [η2(N,C)-2,4,6-NC₅ᵗBU₃H 2] TA(DIPP)2 Cl与适当的烷基锂或格利雅试剂反应,得到烷基衍生物[η2(N,C)-2,4,6-NC₅ᵗBU₃H 2 ] TA(DIPP)2 R [R = Me(5);等(6); ⁿPr(7); ⁿ(8); Ph(9); CH 2 SiMe 3(10)]高产率。已经确定了乙基络合物[η2(N,C)-2,4,6-NC = BU = H 2] TA(DIPP)2 Et(6)的分子结构。使配合物5-9热解后,金属-吡啶基配位体烷基迁移,C-N键裂解产物(DIPP)2 Ta(=NCᵗBu=CHCᵗBu=CHCHᵗBuR)[R = Ph(11);我(12); Et(13); ⁿPr(14);形成ⁿ(15)。从5→12转化的动力学和机理研究表明,甲基迁移严格地是分子内的。因此,发生了对η2(N,C)-吡啶配体的正式内攻击。 (DIPP)2 Ta(=NCᵗBu=CHCᵗBu=CHCHᵗBu)(4)和(DIPP)2Ta(=NCᵗBu=CHCᵗBu=CHCᵗBuPh)(11)是无限稳定的,并且在结构上具有特征,但含β-氢的烷基衍生物(DIPP) )2 Ta(= NC = Bu = CHC = Bu = CHC = BuCHR')[R'= H(12);我(13); Et(14); ⁿPr(15)]分解得到金属吡啶吡啶配合物,[(DIPP 2 Ta(μ-NCᵗBu=CHCᵗBu= CH)2(16)和叔丁基取代的烯烃ᵗBuCH= CHR',据报道其结构为16。标记研究表明,在5→12→16转化中ᵗBuCH= CH 2的来源,并建议通过八元环膨胀异构体(DIPP 2)Ta(= NCᵗBu=CHCᵗBu=CHCᵗBuCH2)(17)。该中间体的乙腈加合物(DIPP)Ta(=NCᵗBu=CHCᵗBu=CHCᵗBuCH2)(MeCN)2(17-MeCN)被捕获。 DIPP)2 Ta(=NCᵗBu=CHCᵗBu=CHCᵗBuCH2 R')[R'= H(12); Me(13); Et(14);ⁿPr(15)]至[(DIPP)2Ta(μ-NCtBu=CHCᵗBu= CH根据这些观察结果,提出了杂环化合物[η1(N)-QUIN] Ta(Oar)3 Cl 2(18)和[η¹(N)-6MQ]-Ta由Ta(Oar)3 Cl 2(OEt 2)和QUIN或6MQ制备(Oar)3 Cl 2(19)(QUIN =喹啉,6MQ = 6-甲基喹啉)。[η1(N)-6MQ] Ta(OAr)2 Cl 3(20。 )准备si类似地由Ta(OAr)2 Cl 3(OEt 2)。将这些络合物快速进行两电子还原后,ηη(N)→η²(N,C)键会发生重排,并且对热敏感的d²物种[η²(N,C)-QUIN] Ta(Oar)₃(可以分离出[η2(N,C)-6MQ] Ta(Oar)3(21)和[η2(N,C)-6MQ] Ta(OAr)2 -Cl(OEt 2)(25)。 PME 3加合物[η2(N,C)-QUIN] Ta(Oar)3(PMe 3)(23)和[η2(N,C)-6MQ] Ta(Oar)3(PMe 3)(24)可以通过以下方法制备: PMe 3与无碱化合物21和22的简单配位。[η2(N,C)-QUIN] Ta(Oar)3(21)的喹啉配体在温和的反应条件下易于氢化,得到1,2,3 ,4-四氢喹啉。当在QUIN或6MQ存在下Ta(Oar)2 Cl 3(OEt 2)被一个电子还原时,d 1双(配体)络合物[η1(N)-6MQ] 2 Ta(Oar)2 Cl 2(26)和[η1(N)可以分离出)(QUIN)2 Ta(OAr)2 Cl 2(27)。讨论了这些研究与工业加氢脱氮(HDN)催化的相关性。

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    Gray Steven Daniel.;

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  • 年度 1995
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