首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Electrogenerated Chemiluminescence of the Tris(2,2'-bipyridine)ruthenium(II)/Tri-n-propylamine (TPrA) System: Crucial Role of the Long Lifetime of TPrA~(·+) Cation Radicals Suggested by Electrode Surface Effects
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Electrogenerated Chemiluminescence of the Tris(2,2'-bipyridine)ruthenium(II)/Tri-n-propylamine (TPrA) System: Crucial Role of the Long Lifetime of TPrA~(·+) Cation Radicals Suggested by Electrode Surface Effects

机译:三(2,2'-联吡啶)钌(II)/三正丙胺(TPrA)系统的电化学发光:TPrA〜(·+)阳离子自由基长寿命的关键作用由电极表面效应暗示

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We describe the effects of electrochemical pretreatment of glassy carbon electrodes (GCEs) on the electrogenerated chemiluminescence (ECL) of the Ru(bpy)_3~(2+) (bpy = 2,2'-bipyridine)/tri-n-propylamine (TPrA) system. It has been found that the oxidation of TPrA at the anodically pretreated GCEs became more facile, while the intensity of ECL could be greatly suppressed. The contravention between the electrochemical reaction kinetics and the light emission intensity of the coreactant ECL system was reported for the first time and has been attributed to the rapid deprotonation of TPrA~(·+) cation radicals by the aid of oxygen-containing surface species formed on the GCE during the pretreatment. Because the lifetime of TPrA~(·+) was reduced, the products of the deprotonation reaction, TPrA~· free radicals, would be more subject to oxidative consumption on the electrode subsequently, leading to weaker ECL signals. When the ECL was produced mainly following a catalytic route, however, the electrode surface effect was much less significant. This study suggests that the long lifetime of TPrA~(·+) cation radicals may be crucial for the intense light emission, which allows a sufficient amount of highly reducing intermediate radicals, TPrA', to participate in the ECL process within a relatively thick reaction layer before being destroyed by the electrode.
机译:我们描述了电化学预处理玻璃碳电极(GCE)对Ru(bpy)_3〜(2+)(bpy = 2,2'-联吡啶)/三正丙胺( TPrA)系统。已经发现,在阳极预处理的GCE上TPrA的氧化变得更容易,而ECL的强度可以被大大抑制。首次报道了共反应剂ECL体系的电化学反应动力学与发光强度之间的矛盾,这归因于TPrA〜(·+)阳离子自由基在形成的含氧表面物种的帮助下快速去质子化在预处理期间在GCE上进行。由于TPrA〜(+)的寿命缩短,去质子化反应的产物TPrA〜·自由基随后将更易在电极上被氧化消耗,从而导致ECL信号变弱。但是,当主要通过催化途径生产ECL时,电极表面效应的影响要小得多。这项研究表明,TPrA〜(·+)阳离子自由基的长寿命对于强光发射可能至关重要,这允许足够数量的高度还原性中间自由基TPrA'在相对较厚的反应中参与ECL过程。层被电极破坏之前。

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