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Electrochemical investigations of the nickel(II)-penicillamine system. 2. Direct identification of complex species involved in catalytic nickel reduction on the dropping mercury electrode

机译:镍(II)-青霉胺体系的电化学研究。 2.在滴下的汞电极上直接鉴定涉及催化镍还原的复杂物质

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The catalytic polarographic nickel prewave was investigated by making appropriate correlations between prewave current and complex species concentrations as calculated by means of available formation constants. It was concluded that the active species is (D-penicillaminato-N,S)nickel(II) [NIL], whereas the bis-ligand complex, [NiL2](2-), is inert and does not play any role in the electrode process. The catalytic character of the electrode process originates from the regeneration of [NiL] by the reaction of adsorbed ligand molecules with free nickel ions available in the bulk of the solution. Conversely, all the complex species in the Ni2+-cysteine system are labile. Consequently, the reaction mechanism in this case may include the dissociation of the complex [NiL2](2-) as an alternative path for the generation of the active species, [NiL]. The bell-shaped form of the prewave was interpreted in terms of potential-dependent catalyst adsorption. [References: 22]
机译:催化极谱镍预波是通过使预波电流与复杂物种浓度之间的适当相关性进行研究的,该相关性是通过可用的形成常数计算得出的。结论是活性物质是(D-penicillaminato-N,S)镍(II)[NIL],而双配体络合物[NiL2](2-)是惰性的,在其中没有任何作用。电极工艺。电极过程的催化特性源自[NiL]的再生,这是通过吸附的配体分子与溶液中大量可用的游离镍离子的反应而产生的。相反,Ni2 +-半胱氨酸系统中的所有复杂物种均不稳定。因此,在这种情况下,反应机理可能包括复合物[NiL2](2-)的解离,作为生成活性物质[NiL]的替代途径。预波的钟形形式是根据电势依赖的催化剂吸附来解释的。 [参考:22]

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