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首页> 外文期刊>New Journal of Chemistry >Electrochemical and theoretical investigations of the reduction of [Fe-2(CO)(5)L{mu-SCH2XCH2S}] complexes related to [FeFe] hydrogenase
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Electrochemical and theoretical investigations of the reduction of [Fe-2(CO)(5)L{mu-SCH2XCH2S}] complexes related to [FeFe] hydrogenase

机译:与[FeFe]氢化酶有关的[Fe-2(CO)(5)L {mu-SCH2XCH2S}]配合物还原的电化学和理论研究

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The complexes [Fe-2(CO)(6){mu-SCH2N(R)CH2S}] (R = CH2CH2OCH3, 1a; R= Pr-i, 1b) and [Fe-2(CO)(6)(mu-pdt)] 2 (pdt = S(CH2)(3)S) are structural analogues of the [2Fe](H) subsite of [FeFe]H(2)ases. Electrochemical investigation of 1 and 2 in MeCN-[NBu4][PF6] under Ar and under CO has demonstrated that the reduction can be resolved into two one-electron transfer steps by using fast scan cyclic voltammetry. At slow scan rates the reduction of 1 tends towards a two-electron process owing to the fast disproportionation of the anion, while the two-electron reduction of 2 is clearly favoured in the presence of CO. Substitution of a CO ligand in 2 by a N-heterocyclic carbene results in the destabilisation of the anion. Thus, in MeCN-, thf- or CH2Cl2-[NBu4][PF6], the electrochemical reduction of Fe-2(CO)(5)L-NHC(mu-pdt)] 3 (L-NHC = 1,3-bis(methyl)-imidazol-2-ylidene, 3a; 1,3-bis(2,4,6-trimethylphenyl)-imidazol-2-ylidene, 3b) occurs in a single-step, two-electron process at moderate scan rates; under appropriate conditions this process can be separated into two one-electron steps. Density Functional Theory calculations successfully rationalize the effects of the S-to-S linkage on the electrochemistry of the complexes.
机译:配合物[Fe-2(CO)(6){mu-SCH2N(R)CH2S}](R = CH2CH2OCH3,1a; R = Pr-1,1b)和[Fe-2(CO)(6)(mu -pdt)] 2(pdt = S(CH2)(3)S)是[FeFe] H(2)酶的[2Fe](H)子位点的结构类似物。在Ar和CO下对MeCN- [NBu4] [PF6]中1和2的电化学研究表明,使用快速扫描循环伏安法可将还原反应分解为两个单电子转移步骤。在慢扫描速率下,由于阴离子的快速歧化,还原1趋向于两电子过程,而在存在CO的情况下,显然倾向于促进2的两电子还原。 N-杂环卡宾导致阴离子的不稳定。因此,在MeCN-,thf-或CH2Cl2- [NBu4] [PF6]中,Fe-2(CO)(5)L-NHC(mu-pdt)] 3的电化学还原(L-NHC = 1,3-双(甲基)-咪唑-2-亚基3a; 1,3-双(2,4,6-三甲基苯基)-咪唑-2-亚基3b)以一步扫描,两电子过程在中等扫描条件下发生费率;在适当的条件下,该过程可以分为两个单电子步骤。密度泛函理论计算成功地实现了S-S键对配合物电化学的影响。

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