首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Carbohydrate-functionalized N-heterocyclic carbene Ru(ii) complexes: synthesis, characterization and catalytic transfer hydrogenation activity
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Carbohydrate-functionalized N-heterocyclic carbene Ru(ii) complexes: synthesis, characterization and catalytic transfer hydrogenation activity

机译:碳水化合物官能化的N-杂环碳甲酸ru(ii)配合物:合成,表征和催化转移氢化活性

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摘要

Three Ru complexes containing carbohydrate/N-heterocyclic carbene hybrid ligands were synthesized that were comprised of a triazolylidene coordination site and a directly linked per-acetylated glucosyl (5Glc) or galactosyl unit (5Gal), or a glycosyl unit linked through an ethylene spacer (6). Electrochemical and UV-vis analysis indicate only minor perturbation of the electronic configuration of the metal center upon carbohydrate installation. Deprotection of the carbohydrate was accomplished under basic conditions to afford complexes that were stable in solution over several hours, but decomposed in the solid state. Complexes 5 and 6 were used as pre-catalysts for transfer hydrogenation of ketones under basic conditions, i.e. conditions that lead to in situ deprotection of the carbohydrate entity. The carbohydrate directly influences the catalytic activity of the metal center. Remotely linked carbohydrates (complex 6) induce significantly lower catalytic activity than directly linked carbohydrates (complexes 5Glc, 5Gal), while unfunctionalized triazolylidenes are an order of magnitude more active. These observations and substrate variations strongly suggest that substrate bonding is rate-limiting for transfer hydrogenation in these hybrid carbohydrate/triazolylidene systems.
机译:合成了含有碳水化合物/正杂环碳杂交配体的三种Ru络合物,其组合于三唑十内烯配位部位和通过乙烯间隔物连接的直接连接的每乙酰化葡萄糖基(5GLC)或半乳糖基单元(5Gal),或通过乙烯间隔物连接的糖基单元( 6)。电化学和UV-VIS分析仅表明碳水化合物安装时金属中心的电子配置的微小扰动。在碱性条件下完成碳水化合物的脱保护,得到在溶液中稳定的复合物在几小时内,但在固态中分解。将配合物5和6用作在基本条件下作为转移酮的氢化氢化的前催化剂,即导致原位脱保护碳水化合物实体的条件。碳水化合物直接影响金属中心的催化活性。远程连接的碳水化合物(复合物6)诱导显着降低的催化活性明显低于直接连接的碳水化合物(配合物5GLC,5GLC),而无官能化三唑基是更活跃的级。这些观察结果和衬底变化强烈表明基材键合是在这些杂交碳水化合物/三唑基体系中转移氢化的速率限制。

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