化学发光
化学
火用反应
光化学
激发态
光发射
氧化还原
化学能
发射强度
共价键
辐射能
化学反应
辐射传输
基质(水族馆)
反应机理
纳米技术
动力学
化学物理
势能
发射光谱
光解
作者
Dario R. Alessi,Luca Morgan,Elisa Pelorosso,Mirco Scaccaglia,Piermaria Pinter,Alessandro Aliprandi
摘要
Chemiluminescence (CL) typically derives from harvesting the energy released during the cleavage of covalent bonds, wherein molecular substrates are irreversibly consumed to generate electronically excited states. In contrast, regenerative CL seeks to bypass substrate decomposition by using reversible redox processes to produce emissive states, an approach that is largely limited to polypyridyl complexes of Ru(II) and Cr(III). Here, we report a fundamentally distinct chemiluminescence mechanism in which the exergonic reduction of Pt(IV) complexes powers the spontaneous formation of emissive Pt(II) aggregates. Notably, light emission arises not from discrete molecular species but from the self-assembled state, whose electronic structure features a lowered excited-state energy (E0,0) conducive to radiative decay. The emission spectrum observed during chemical reduction matches that of photoexcited aggregates, confirming that the emissive state is intrinsic to the aggregated Pt(II) architecture. This chemiluminescence occurs without external photoexcitation, and its intensity and persistence depend on the nature of the reductant, ranging from transient flashes to sustained afterglow. These findings unveil a new energy transduction pathway in CL: emission driven by redox-triggered self-assembly, expanding the conceptual and chemical space of chemiluminescence beyond classical molecular luminophores and toward dynamic, structure-responsive materials.
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