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New perspectives on the annihilation electrogenerated chemiluminescence of mixed metal complexes in solution

机译:溶液中混合金属配合物the灭电生化学发光的新观点

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摘要

Preliminary explorations of the annihilation electrogenerated chemiluminescence (ECL) of mixed metal complexes have revealed opportunities to enhance emission intensities and control the relative intensities from multiple luminophores through the applied potentials. However, the mechanisms of these systems are only poorly understood. Herein, we present a comprehensive characterisation of the annihilation ECL of mixtures of tris(2,2′-bipyridine)ruthenium(ii) hexafluorophosphate ([Ru(bpy)3](PF6)2) and fac-tris(2-phenylpyridine)iridium(iii) ([Ir(ppy)3]). This includes a detailed investigation of the change in emission intensity from each luminophore as a function of both the applied electrochemical potentials and the relative concentrations of the two complexes, and a direct comparison with two mixed (Ru/Ir) ECL systems for which emission from only the ruthenium-complex was previously reported. Concomitant emission from both luminophores was observed in all three systems, but only when: (1) the applied potentials were sufficient to generate the intermediates required to form the electronically excited state of both complexes; and (2) the concentration of the iridium complex (relative to the ruthenium complex) was sufficient to overcome quenching processes. Both enhancement and quenching of the ECL of the ruthenium complex was observed, depending on the experimental conditions. The observations were rationalised through several complementary mechanisms, including resonance energy transfer and various energetically favourable electron-transfer pathways.
机译:混合金属配合物的electro灭电化学发光(ECL)的初步探索揭示了增强发射强度并通过施加电势控制多个发光体的相对强度的机会。但是,对这些系统的机制了解甚少。本文中,我们对三(2,2'-联吡啶)钌(ii)六氟磷酸盐([Ru(bpy)3](PF6)2)和fac-tris(2-苯基吡啶)混合物的E灭ECL进行全面表征铱(iii)([Ir(ppy)3])。这包括对每个发光体的发射强度随所施加的电化学势和两种配合物的相对浓度的函数进行详细研究,并直接与两种混合(Ru / Ir)ECL系统进行比较,从中以前仅报道了钌配合物。在所有三个系统中均观察到了来自两个发光体的伴随发射,但仅在以下情况下:(1)施加的电势足以生成形成两个复合物的电子激发态所需的中间体; (2)铱配合物(相对于钌配合物)的浓度足以克服淬灭过程。根据实验条件,观察到钌配合物的ECL增强和猝灭。通过几种互补的机制使观测合理化,包括共振能量转移和各种能量有利的电子转移途径。

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