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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Formation and characterization of water-soluble hydrido-ruthenium(II) complexes of 1,3,5-triaza-7-phosphaadamantane and their catalytic activity in hydrogenation of CO2 and HCO3- in aqueous solution
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Formation and characterization of water-soluble hydrido-ruthenium(II) complexes of 1,3,5-triaza-7-phosphaadamantane and their catalytic activity in hydrogenation of CO2 and HCO3- in aqueous solution

机译:1,3,5-三氮杂-7-磷金刚烷的水溶性氢化钌(II)配合物的形成,表征及其在水溶液中CO2和HCO3-加氢中的催化活性

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摘要

The water-soluble tertiary phosphine complex of ruthenium(II), [RuCl2(PTA)(4)], (PTA. 1,3,5-triaza-7-phosphaadamantane) was used as catalyst precursor for hydrogenation of CO2 and bicarbonate in aqueous solution, in the absence of amine or other additives, under mild conditions. Reaction of:[RuCl2(PTA)(4)] and H-2 (60 bar) gives the hydrides [RuH2(PTA)(4)] (at pH = 12.0) and [RuH(PTA)(4)X] (X = Cl- or H2O) (at pH = 2.0). In presence of excess PTA, formation of the unparalleled cationic pentakis-phosphino species, [HRu(PTA)(5)](+), was unambiguously established by H-1 and P-31 NMR measurements. The same hydrides were observed when [Ru(H2O)(6)][tos](2) (tos = toluene-4-sulfonate) reacted with,PTA under Hz,pressure. The rate of CO2 hydrogenation strongly depends on the pH. The highest initial reaction rate (TOF 807.3 h(-1)) was determined for a 10% HCO3-/90% CO2 mixture (pH = 5.86), whereas the reduction was very slow both at low and high pH (CO2 and Na2CO3 solutions, respectively). H-1 and P-31 NMR studies together-with the icinetic measurements suggested that HCO3- was the real substrate and [RuH(PTA)(4)X] the catalytically active hydride species in this reaction. Hydrogenation of HCO3- showed an induction period which:could be ascribed to the slow formation of the catalytically active hydride species. [References: 45]
机译:钌(II),[RuCl2(PTA)(4)],(PTA.1,3,5-triaza-7-phosphaadamantanetan)的水溶性叔膦络合物用作催化剂的前驱体,用于氢化CO2和碳酸氢根不含胺或其他添加剂的温和条件下的水溶液。 [RuCl2(PTA)(4)]与H-2(60 bar)的反应生成氢化物[RuH2(PTA)(4)](在pH = 12.0时)和[RuH(PTA)(4)X]( X = Cl-或H2O)(在pH = 2.0时)。在过量的PTA的存在下,通过H-1和P-31 NMR测量明确地确定了无与伦比的阳离子五元膦类化合物[HRu(PTA)(5)](+)的形成。当[Ru(H2O)(6)] [tos](2)(tos =甲苯-4-磺酸盐)与PTA在Hz压力下反应时,观察到相同的氢化物。 CO2加氢的速度很大程度上取决于pH值。确定了10%HCO3- / 90%CO2混合物(pH = 5.86)的最高初始反应速率(TOF 807.3 h(-1)),而在低pH和高pH(CO2和Na2CO3溶液)下,还原速度都很慢, 分别)。 H-1和P-31 NMR研究以及辛酸测量表明该反应中HCO3-是真正的底物,[RuH(PTA)(4)X]是催化活性的氢化物。 HCO 3-的氢化显示出一个诱导期,这可以归因于催化活性氢化物物质的缓慢形成。 [参考:45]

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