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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >EFFECT OF LIGAND CONSTRAINTS UPON THE STABILITIES AND POTENTIALS OF MACROCYCLIC POLYTHIAETHER COMPLEXES - COPPER(II) AND COPPER(I) COMPLEXES WITH CYCLOHEXYL AND PHENYL DERIVATIVES OF [14]ANES(4) IN WATER, 80-PERCENT METHANOL, AND ACETONITRILE
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EFFECT OF LIGAND CONSTRAINTS UPON THE STABILITIES AND POTENTIALS OF MACROCYCLIC POLYTHIAETHER COMPLEXES - COPPER(II) AND COPPER(I) COMPLEXES WITH CYCLOHEXYL AND PHENYL DERIVATIVES OF [14]ANES(4) IN WATER, 80-PERCENT METHANOL, AND ACETONITRILE

机译:配体对大环聚醚配合物-铜(II)和铜(I)与[14](4)的环己基和苯酚衍生物,水,80%乙醇和丙酮中的环己基和铜的稳定性和电位的影响

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Synthetic procedures are described for the preparation of all 11 of the possible derivatives of the 14-membered macrocyclic tetrathiaether [14]aneS(4) (1,4,8,11-tetrathiacyclotetradecane), in which one or both of the ethylene bridges have been replaced by 1,2-benzene and/or cis- or trans-1,2-cyclohexane. The visible spectra of the copper(II) complexes formed with the derivatized ligands have been recorded in aqueous solution, in 80% methanol, and in acetonitrile; and the Cu(II/I)L potentials have also been determined in these three solvents. Limited solubility of the uncomplexed ligands has hindered the measurement of the Cu(II)L or Cu(I)L stability constants in aqueous solution. However, it has proved possible to measure the Cu(II)L stability constants in 80% methanol with all ligands except the dibenzo derivative using a spectrophotometric approach; and the Cu(I)L stability constants have been measured by pulsed square-wave cyclic voltammetry in acetonitrile. The stability constants for the Cu(I)L complexes in 80% methanol and the Cu(II)L complexes in acetonitrile, though too large to be measured directly by these approaches, were calculated indirectly for each ligand system by means of the Nernst equation. The trends in the stability constant values in these two solvent matrices are relatively uniform with the Cu(II)L stability constants for the cyclohexyl and phenyl derivatives increasing by about 10(7)-fold and 10(8)-fold, respectively, on going from 80% methanol to acetonitrile while the Cu(I)L stability constants decrease by about 10(8)-fold. These solvent dependencies are primarily attributed to the differing abilities of the two solvents to coordinate with the two oxidation states of copper. For the Cu(II) complexes with the derivatized [14]aneS(4) ligands, the following trends are noted: (i) incorporation of a single cyclohexyl group increases the stability constant by 1.5 orders of magnitude as a result of a more favorable enthalpy; (ii) incorporation of a second trans-cyclohexyl group increases the stability constant by more than an additional 1.5 orders of magnitude for a total increase of more than 10(3); (iii) for the cis,cis-dicyclohexyl derivatives, the syn isomer increases the overall stability by 4 orders of magnitude, but the anti isomer yields only a 10-fold increase; (iv) incorporation of a single benzene lowers the stability by about 3 orders of magnitude, while two benzenes lower the stability to the point where measurements could not be obtained. In the Cu(I) complexes, incorporation of either a cyclohexane or benzene increases the stability constant by about 10-fold. The effect of introducing a second cyclohexane ring results in stability constant increases of about 1- to 10-fold with no pattern apparent. [References: 63]
机译:描述了制备14元大环四硫醚[14] aneS(4)(1,4,8,11-四硫代环十四烷)的所有11种可能衍生物的合成方法,其中一个或两个乙烯桥均具有被1,2-苯和/或顺式或反式1,2-环己烷取代。在水溶液,80%甲醇和乙腈中记录了与衍生化的配体形成的铜(II)配合物的可见光谱。在这三种溶剂中也已确定了Cu(II / I)L电位。未络合配体的有限溶解性阻碍了水溶液中Cu(II)L或Cu(I)L稳定常数的测量。但是,已经证明可以使用分光光度法测量除二苯并衍生物以外的所有配体在80%甲醇中的Cu(II)L稳定性常数。并通过脉冲方波循环伏安法在乙腈中测量了Cu(I)L稳定性常数。通过Nernst方程间接计算出每个配体体系的80%甲醇中的Cu(I)L配合物和乙腈中的Cu(II)L配合物的稳定性常数,尽管太大而无法通过这些方法直接测量。 。在这两种溶剂基质中,稳定常数值的趋势相对均匀,其中环己基和苯基衍生物的Cu(II)L稳定常数分别增加约10(7)倍和10(8)倍。从80%的甲醇变为乙腈,而Cu(I)L的稳定常数降低了约10(8)倍。这些溶剂依赖性主要归因于两种溶剂与铜的两种氧化态配合的不同能力。对于具有衍生化的[14] aneS(4)配体的Cu(II)配合物,应注意以下趋势:(i)引入单个环己基可使稳定常数提高1.5个数量级,这是由于更有利的结果焓(ii)引入第二个反式环己基基团使稳定性常数增加了1.5个数量级以上,总增加量超过10(3); (iii)对于顺式,顺式-二环己基衍生物,顺式异构体将整体稳定性提高了4个数量级,但反式异构体仅增加了10倍; (iv)掺入单个苯使稳定性降低约3个数量级,而两个苯将稳定性降低至无法获得测量值的程度。在Cu(I)络合物中,并入环己烷或苯可将稳定性常数提高约10倍。引入第二个环己烷环的效果导致稳定常数增加约1至10倍,而没有明显的图案。 [参考:63]

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