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首页> 外文期刊>Polyhedron: The International Journal for Inorganic and Organometallic Chemistry >Synthesis, characterization, and electrochemical, and electrical measurements of novel 4,4 '-isopropylidendioxydiphenyl bridged bis and cofacial bis-metallophthalocyanines (Zn, Co)
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Synthesis, characterization, and electrochemical, and electrical measurements of novel 4,4 '-isopropylidendioxydiphenyl bridged bis and cofacial bis-metallophthalocyanines (Zn, Co)

机译:新型4,4'-异丙基二氧杂双苯基桥接的双和界面双金属酞菁(Zn,Co)的合成,表征以及电化学和电学测量

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摘要

4,4'-Isopropylidendioxydiphenyl bridged bis-metallophthalocyanines Zn(II) (5) and Co(II) (6) were synthesized from the compound 4,4'-isopropylidendioxydiphthalonitrile (3) and 4,5-bis(hexylthio)phthalonitrile (4). The new cofacial bis-phthalocyanines Zn(II) (7) and Co(II) (8) were synthesized from the corresponding 3 which can be obtained by the reaction of 4,4'-isopropylidendiphenol (1) with 4-nitrophthalonitrile (2). These complexes have been characterized by elemental analysis, UV/Vis, FT-IR, H-1 NMR and MALDI-TOF mass spectroscopies. The electrochemical properties of the complexes were examined by cyclic voltammetry, differential pulse voltammetry and controlled potential coulometry in nonaqueous media. Electrochemical results showed that while there is not any considerable interaction between the two phthalocyanine rings in bisphthalocyanine complexes 5 and 6, the splitting of the molecular orbitals occurs as a result of the strong interaction between the phthalocyanine rings in cofacial complexes 7 and 8. Measurements of capacitance showed a well defined decrease with increasing frequency and an increase with increasing temperature at lower frequencies. (C) 2008 Elsevier Ltd. All rights reserved.
机译:由化合物4,4'-异丙基二烯氧基二邻苯二甲腈(3)和4,5-双(己基硫代)邻苯二甲腈(4,4'-异丙基二烯氧基二苯基桥联的双金属酞菁Zn(II)(5)和Co(II)(6) 4)。由相应的3合成新的双表面双酞菁锌Zn(II)(7)和Co(II)(8),可以通过4,4'-异丙基二苯二酚(1)与4-硝基邻苯二甲腈(2)反应获得)。这些配合物已通过元素分析,紫外/可见,FT-IR,H-1 NMR和MALDI-TOF质谱进行了表征。通过循环伏安法,差分脉冲伏安法和可控电库仑法在非水介质中检查了配合物的电化学性质。电化学结果表明,虽然双酞菁配合物5和6中的两个酞菁环之间没有任何显着的相互作用,但由于界面配合物7和8中的酞菁环之间存在强相互作用,因此发生了分子轨道的分裂。在较低频率下,电容显示出明确定义的随频率增加而减少,而随温度升高而增加。 (C)2008 Elsevier Ltd.保留所有权利。

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