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首页> 外文期刊>Inorganica Chimica Acta >ION-PAIR CHARGE-TRANSFER COMPLEXES OF A DITHIOOXALATE ZINC DONOR COMPONENT WITH VIOLOGENS - SYNTHESIS, STRUCTURAL AND ELECTRONIC CHARACTERIZATION
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ION-PAIR CHARGE-TRANSFER COMPLEXES OF A DITHIOOXALATE ZINC DONOR COMPONENT WITH VIOLOGENS - SYNTHESIS, STRUCTURAL AND ELECTRONIC CHARACTERIZATION

机译:二氧化草酸酯锌掺杂剂与紫胶的离子对电荷转移络合物-合成,结构和电子表征

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摘要

Bipyridinium and phenanthrolinium accepters of different reduction potentials form with zinc 1,2-dithiooxalates (dto) ion-pair charge-transfer complexes of the general formula {A(2+) [Zn(dto)(2)](2-)}. The contact ion pairs exhibit absorptions in the range 390-490 nm which can be attributed to the ion-pair charge-transfer (IPCT) type. On the base of spectroscopic, electrochemical and quantum-chemical investigations the relation between optical and thermal electron transfer within the ion pair applying the Hush theory is discussed. The mean reorganization energy of 12 complexes is 180 kJ mol(-1) and exceeds the values found for the dithiolene systems. Due to the diminished donor ability of the dithiooxalate unit, a hypsochromic shift of the position of the IPCT band, compared with the metal dithiolenes, results. The extent of electron delocalization from [Zn(dto)(2)](2-) to PQ(2+), as described by the parameter alpha(2), is calculated as 4.1 x 10(-6). X-ray analyses of BQ[Zn(dto)(2)] and DP[Zn(dto)(2)] reveal that the solid-state structure is largely determined by the geometry of the acceptor component. [References: 52]
机译:具有不同还原电势的联吡啶和菲咯啉受体与通式{A(2+)[Zn(dto)(2)](2-)}的1,2-二硫代草酸锌(dto)离子对电荷转移配合物形成。接触离子对的吸收范围为390-490 nm,这归因于离子对电荷转移(IPCT)类型。在光谱学,电化学和量子化学研究的基础上,讨论了应用Hush理论的离子对内光电子传递与热电子传递之间的关系。 12个配合物的平均重组能为180 kJ mol(-1),超过了二硫代烯烃系统的值。由于二硫代草酸酯单元的供体能力降低,导致与金属二硫代烯烃相比,IPCT带的位置发生了显色变化。如参数alpha(2)所述,从[Zn(dto)(2)](2-)到PQ(2+)的电子离域程度计算为4.1 x 10(-6)。 BQ [Zn(dto)(2)]和DP [Zn(dto)(2)]的X射线分析表明,固态结构在很大程度上取决于受体组分的几何形状。 [参考:52]

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