首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Oxidation-state and metal-ion dependent stereoisomerization in oxo molybdenum and tungsten complexes of a bulky alkoxy heteroscorpionate ligand
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Oxidation-state and metal-ion dependent stereoisomerization in oxo molybdenum and tungsten complexes of a bulky alkoxy heteroscorpionate ligand

机译:庞大的烷氧基杂蝎子配体的氧钼和钨配合物中的氧化态和金属离子依赖性立体异构

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摘要

Monooxo Mo(V) complexes of a N2O heteroscorpionate ligand designated (L10O) are found to exist as isolable cis and trans isomers. We have been able to trap the kinetically labile cis isomer and follow its isomerization to the thermodynamically more stable trans form. We have also followed the kinetics of isomerization between the cis and trans isomers of the corresponding dioxo Mo(VI) and W(VI) species. Here the trans is the labile isomer that spontaneously converts to the thermodynamically more stable cis. It is observed that at 60 degrees C in DMSO the Mo(VI) complex isomerizes approximately 6.5 times faster than the Mo( V) and nearly 5 times faster than the corresponding W( VI) analogs. The temperature dependence to the kinetics of the Mo(V) and Mo(VI) isomerizations give activation parameters that are similar for both oxidation states and consistent with those previously observed in [(L1O)MoOCl2] suggesting a similar twist mechanism is operating in all cases. Thus there are oxidation state, metal ion and donor atom dependent differences in isomeric stability that could have significant implications for understanding the mechanisms of both enzymatic and nonenzymatic oxo atom transfer reactions catalyzed by complexes of Mo, W and Re.
机译:发现N2O杂蝎配体(L10O)的Monooxo Mo(V)配合物以可分离的顺式和反式异构体形式存在。我们已经能够捕获动力学不稳定的顺式异构体,并将其异构化为热力学更稳定的反式。我们还跟踪了相应的二氧杂Mo(VI)和W(VI)物种的顺式和反式异构体之间的异构化动力学。在此,反式是不稳定的异构体,它会自发转化为热力学上更稳定的顺式。可以看出,在DMSO中,在60摄氏度下,Mo(VI)的异构化速度比Mo(V)快约6.5倍,比相应的W(VI)类似物快5倍。温度对Mo(V)和Mo(VI)异构化动力学的温度依赖性提供了两个氧化态均相似的活化参数,并且与先前在[(L1O)MoOCl2]中观察到的活化参数一致,表明在所有分子中都存在相似的扭曲机理案件。因此,异构体稳定性中存在氧化态,金属离子和供体原子相关的差异,这对于理解由Mo,W和Re的络合物催化的酶促和非酶促氧代氧原子转移反应的机理可能具有重要意义。

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