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Dehydrogenation of Saturated CC and BN Bonds at Cationic N-Heterocyclic Carbene Stabilized M(III) Centers (M = Rh, Ir)

机译:阳离子N杂环碳原子稳定的M(III)中心处饱和CC和BN键的脱氢(M = Rh,Ir)

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摘要

Chloride abstraction from the group 9 metal bis(N-heterocyclic carbene) complexes M(NHC)_2(H)_2CI [M = Rh, Ir; NHC = IPr = N,N-bis(2,6-diisopropylphenyl)imidazol-2-ylidene or IMes = N,N-bis(2,4,6-trimethylphenyl)imidazol-2-ylidene] leads to the formation of highly reactive cationic species capable of the dehydrogenation of saturated CC and BN linkages. Thus, the reaction of lr(IPr)_2(H)_2CI (1) with Na[BAr_4~f] in fluorobenzene generates [lr(IPr)_2(H)_2]+[BAr_4~f]~- (4) in which the iridium center is stabilized by a pair of agostic interactions utilizing the methyl groups of the isopropyl substituents. After a prolonged reaction period C-H activation occurs, ultimately leading to the dehydrogenation of one of the carbene Pr substituents and the formation of [lr(IPr)(IPr")(H)_2]+[BAr_4~f ]~- (5), featuring the mixed NHC/alkene donor IPr' ligand. By contrast, the related IMes complexes M(IMes)_2(H)_2CI (M = Rh, Ir), which feature carbene substituents lacking β-hydrogens, react with Na[BAr_4~f] in fluorobenzene to give rare examples of NaCl inclusion compounds, viz., [M(IMes)_2(H)_2Cl(Na)]+[BAr_4~f]~- (M = Rh, 6; M = Ir, 7). Intercalation of the sodium cation between the mesityl aromatic rings of the two NHC donors has been demonstrated by crystallographic studies of 7. Synthetically, 6 and 7 represent convenient yet highly reactive sources of the putative 14-electron [M(NHC)_2(H)_2]~+ cations, readily eliminating NaCI in the presence of potential donors. Thus 7 can be employed in the synthesis of the dinitrogen complexes [lr(IMes)_2(N_2)_2]+[BAr_4~f]-(8a) and [lr(IMes)_2(N_2)THF]+[BAr_4~f]~- (8b) (albeit with additional loss of H_2) by stirring in toluene under a dinitrogen atmosphere and recrystallization from the appropriate solvent system. The interactions of 6 and 7 with primary, secondary, and tertiary amineboranes have also been investigated. Although reaction with the latter class of reagent simply leads to coordination of the amineborane at the metal center via two M-H-B bridges {and formation, for example, of the 18-electron species [M(Imes)_2(H)_2(μ-H)_2B(H)·NMe3]~+[Bar_4~f]~- (M = Rh, 9; M = Ir, 10)}, the corresponding reactions with systems containing N-H bonds proceed via dehydrogenation of the BN moiety to give complexes containing unsaturated aminoborane ligands. Thus, for example, 6 catalyzes the dehydrogenation of R_2NH ? BH_3 (R = Pr, Cy) in fluorobenzene solution (100% conversion over 6 h at 2 mol % loading) to give R_2NBH_2; the organometallic complex isolated at the end of the catalytic run in each case is shown to be [Rh(Imes)_2(H)_2(μ-H)_2BNR_2]~+[Bar_4~f]~-(R = Pr, 11; R = Cy, 12). In contrast to isoelectronic alkene donors, the aminoborane ligand in these complexes (and in the corresponding iridium compounds 13 and 14) can be shown by crystallographic methods to bind in end-on fashion via a bis(a-borane) motif. Similar dehydrogenation chemistry is applicable to the primary amineborane BuNH_2?BH_3, although in this case the rate of rhodium-catalyzed dehydrogenation is markedly slower. This enables the amineborane complex [Rh(Imes)_2(H)_2(μ-H)_2B(H)?NH_2'Bu]~+[Bar_4~f](15) to be isolated at short reaction times (ca. 6 h) and the corresponding (dehydrogenated) aminoborane system [Rh(Imes)_2(H)_2(μ-H)_2BNH(~f)Bu]~+[BAr4]~-(16) to be isolated after an extended period (ca. 48 h). As far as further reactivity is concerned, aminoborane systems such as 14 show themselves to be amenable to further dehydrogenation chemistry in the presence of tert-butylethylene leading ultimately to the dehydrogenation of the boron-containing ligand and to the formation of a directly Ir-B bonded system described by limiting boryl (Ir-B) and borylene (Ir=B) forms.
机译:从9族金属双(N-杂环卡宾)配合物M(NHC)_2(H)_2Cl [M = Rh,Ir; NHC = IPr = N,N-双(2,6-二异丙基苯基)咪唑-2-亚基或IMes = N,N-双(2,4,6-三甲基苯基)咪唑-2-亚基]导致形成高能够使饱和CC和BN键脱氢的活性阳离子物质。因此,lr(IPr)_2(H)_2Cl(1)与氟苯中的Na [BAr_4〜f]反应生成[lr(IPr)_2(H)_2] + [BAr_4〜f]〜-(4)通过异丙基取代基的甲基通过一对不良相互作用使铱中心稳定。在延长的反应时间后,CH活化发生,最终导致卡宾Pr取代基之一脱氢并形成[lr(IPr)(IPr“)(H)_2] + [BAr_4〜f]〜-(5)相比之下,相关的IMes配合物M(IMes)_2(H)_2CI(M = Rh,Ir),其特征在于缺少β-氢的卡宾取代基,与Na [BAr_4]发生反应。氟苯中的〜f]给出了NaCl包合物的稀有例子,即[M(IMes)_2(H)_2Cl(Na)] + [BAr_4〜f]〜-(M = Rh,6; M = Ir, 7)。通过对7的晶体学研究证明,在两个NHC供体的异族芳环之间存在钠阳离子的插入。综上,6和7代表了方便且高反应性的推定14电子[M(NHC)_2 (H)_2]〜+阳离子,可在潜在供体存在的情况下轻松消除NaCl,因此可将7用于合成二氮配合物[lr(IMes)_2(N_2)_2] + [BAr_4〜f]-( 8a)和[lr(IMes)_2(N_2)THF] + [BAr_通过在二氮气氛下在甲苯中搅拌并从适当的溶剂系统中重结晶得到4-(f)-(8b)(尽管另外损失了H_2)。还研究了6和7与伯,仲和叔胺硼烷的相互作用。尽管与后一类试剂的反应仅导致金属中心的氨基硼烷通过两个MHB桥进行配位(例如,形成18电子体[M(Imes)_2(H)_2(μ-H )_2B(H)·NMe3] ++ [Bar_4〜f]〜-(M = Rh,9; M = Ir,10)},与含NH键的体系的相应反应通过BN部分的脱氢反应而生成络合物含有不饱和氨基硼烷配体。因此,例如6催化R 2 NH 3的脱氢。 BH_3(R = Pr,Cy)在氟苯溶液中(在2 mol%的负载下6小时内100%转化),得到R_2NBH_2;在每种情况下催化运行结束时分离出的有机金属配合物显示为[Rh(Imes)_2(H)_2(μ-H)_2BNR_2]〜+ [Bar_4〜f]〜-(R = Pr,11 ; R = Cy,12)。与等电子烯烃供体相反,这些配合物(以及相应的铱化合物13和14)中的氨基硼烷配体可以通过晶体学方法显示为通过双(α-硼烷)基序以末端方式结合。尽管在这种情况下,铑催化的脱氢速度明显较慢,但类似的脱氢化学也适用于伯胺硼烷BuNH_2→BH_3。这使得胺硼烷络合物[Rh(Imes)_2(H)_2(μ-H)_2B(H)?NH_2'Bu]〜+ [Bar_4〜f](15)可以在很短的反应时间被分离出来(约6) h)和相应的(脱氢)氨基硼烷体系[Rh(Imes)_2(H)_2(μ-H)_2BNH(〜f)Bu]〜+ [BAr4]〜-(16)进行分离(约48小时)。就进一步的反应性而言,氨基硼烷体系(如14)表明它们适合在叔丁基乙烯存在下进行进一步的脱氢化学反应,最终导致含硼配体的脱氢并直接形成Ir-B。通过限制硼基(Ir-B)和亚硼基(Ir = B)形式描述的键合体系

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  • 来源
    《Journal of the American Chemical Society》 |2010年第30期|p.10578-10591|共14页
  • 作者单位

    Inorganic Chemistry Laboratory, Department of Chemistry, University of Oxford, South Parks Road, Oxford OX1 3QR, U.K;

    rnInorganic Chemistry Laboratory, Department of Chemistry, University of Oxford, South Parks Road, Oxford OX1 3QR, U.K;

    rnInorganic Chemistry Laboratory, Department of Chemistry, University of Oxford, South Parks Road, Oxford OX1 3QR, U.K;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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