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Considering the chemical energy requirements of the tri-n-propylamine co-reactant pathways for the judicious design of new electrogenerated chemiluminescence detection systems

机译:考虑明智地设计新的电化学发光检测系统的三正丙胺共反应剂途径的化学能要求

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摘要

The introduction of a \u27co-reactant\u27 was a critical step in the evolution of electrogenerated chemiluminescence (ECL) from a laboratory curiosity to a widely utilised detection system. In conjunction with a suitable electrochemiluminophore, the co-reactant enables generation of both the oxidised and reduced precursors to the emitting species at a single electrode potential, under the aqueous conditions required for most analytical applications. The most commonly used co-reactant is tri-n-propylamine (TPrA), which was developed for the classic tris(2,2\u27-bipyridine)ruthenium(ii) ECL reagent. New electrochemiluminophores such as cyclometalated iridium(iii) complexes are also evaluated with this co-reactant. However, attaining the excited states in these systems can require much greater energy than that of tris(2,2\u27-bipyridine)ruthenium(ii), which has implications for the co-reactant reaction pathways. In this tutorial review, we describe a simple graphical approach to characterise the energetically feasible ECL pathways with TPrA, as a useful tool for the development of new ECL detection systems.
机译:在实验室好奇心向广泛使用的检测系统发展电化学发光(ECL)的过程中,引入\ u27co-reantant \ u27是至关重要的一步。结合合适的电化学发光体,在大多数分析应用所需的水性条件下,共反应物能够在单个电极电势下生成发光物质的氧化前体和还原前体。最常用的共反应物是三正丙胺(TPrA),它是为经典的三(2,2 \ u27-联吡啶)钌(ii)ECL试剂开发的。新的电化学发光体,例如环金属化的铱(iii)配合物,也可以通过这种共反应物进行评估。但是,在这些系统中获得激发态可能需要的能量比三(2,2 \ u27-联吡啶)钌(ii)的能量大得多,这对共反应物反应路径有影响。在本教程的复习中,我们描述了一种简单的图形化方法来表征TPrA在能量上可行的ECL途径,这是开发新ECL检测系统的有用工具。

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