School of Life and Environmental Sciences, Faculty of Science, Engineering and Built Environment, Deakin University, Geelong, Victoria 3220, Australia.
Phys Chem Chem Phys. 2018 Jul 18;20(28):18995-19006. doi: 10.1039/c8cp01737a.
Previously reported annihilation ECL of mixtures of metal complexes have generally comprised Ir(ppy)3 or a close analogue as a higher energy donor/emitter (green/blue light) and [Ru(bpy)3]2+ or its derivative as a lower energy acceptor/emitter (red light). In contrast, here we examine Ir(ppy)3 as the lower energy acceptor/emitter, by combining it with a second Ir(iii) complex: [Ir(df-ppy)2(ptb)]+ (where ptb = 1-benzyl-1,2,3-triazol-4-ylpyridine). The application of potentials sufficient to attain the first single-electron oxidation and reduction products can be exploited to detect Ir(ppy)3 at orders of magnitude lower concentration, or enhance its maximum emission intensity at high concentration far beyond that achievable through conventional annihilation ECL of Ir(ppy)3 involving comproportionation. Moreover, under certain conditions, the colour of the emission can be selected through the applied electrochemical potentials. We have also prepared a novel Ir(iii) complex with a sufficiently low reduction potential that the reaction between its reduced form and Ir(ppy)3+ cannot populate the excited state of either luminophore. This enabled, for the first time, the exclusive formation of either excited state through the application of higher cathodic or anodic potentials, but in both cases, the ECL was greatly diminished by parasitic dark reactions.
先前报道的金属配合物混合物的湮灭电化学发光(ECL)通常包含 Ir(ppy)3 或其类似物作为高能供体/发射器(绿光/蓝光)和 [Ru(bpy)3]2+ 或其衍生物作为低能受体/发射器(红光)。相比之下,在这里,我们将 Ir(ppy)3 作为低能受体/发射器,将其与第二个 Ir(iii)配合物结合使用:[Ir(df-ppy)2(ptb)]+(其中 ptb = 1-苄基-1,2,3-三唑-4-基吡啶)。施加足以达到第一个单电子氧化和还原产物的电势可以用来检测浓度低几个数量级的 Ir(ppy)3,或者在高浓度下大大提高其最大发射强度,远远超过通过涉及comporprotion 的常规 Ir(ppy)3 湮灭 ECL 所能达到的强度。此外,在某些条件下,通过施加的电化学电势可以选择发射光的颜色。我们还制备了一种新型 Ir(iii)配合物,其还原电势足够低,以至于其还原形式与 Ir(ppy)3+之间的反应不能使任何发光体的激发态得到填充。这使得首次通过施加更高的阴极或阳极电势可以专一地形成任一激发态,但在两种情况下,ECL 都因寄生暗反应而大大减弱。