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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >An insight into fluorescent transition metal complexes
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An insight into fluorescent transition metal complexes

机译:深入了解荧光过渡金属配合物

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The emission from transition metal complexes is usually produced from triplet excited states. Owing to strong spin-orbit coupling (SOC), the fast conversion of singlet to triplet excited states via intersystem crossing (ISC) is facilitated. Hence, in transition metal complexes, emission from singlet excited states is not favoured. Nevertheless, a number of examples of transition metal complexes that fluoresce with high intensity have been found and some of them were even comprehensively studied. In general, three common photophysical characteristics are used for the identification of fluorescent emission from a transition metal complex: emission lifetimes on the nanosecond scale; a small Stokes shift; and intense emission under aerated conditions. For most of the complexes reviewed here, singlet emission is the result of ligand-based fluorescence, which is the dominant emission process due to poor metal-ligand interactions leading to a small metal contribution in the excited states, and a competitive fluorescence rate constant when compared to the ISC rate constant. In addition to the pure fluorescence from metal complexes, another two types of fluorescent emissions were also reviewed, namely, delayed fluorescence and fluorescence-phosphorescence dual emissions. Both emissions also have their respective unique characteristics, and thus they are discussed in this perspective.
机译:过渡金属络合物的发射通常由三重激发态产生。由于强大的自旋轨道耦合(SOC),通过系统间交叉(ISC)促进了单重态到三重态激发态的快速转换。因此,在过渡金属络合物中,单重激发态的发射是不利的。然而,已经发现了许多发出高强度荧光的过渡金属配合物的例子,甚至对其中一些进行了全面的研究。通常,三种常见的光物理特性用于鉴定过渡金属络合物的荧光发射:纳秒级的发射寿命;小的斯托克斯班次;充气条件下会产生强烈的排放。对于此处讨论的大多数络合物,单线态发射是基于配体的荧光的结果,这是主要的发射过程,这是由于不良的金属-配体相互作用导致在激发态下金属贡献较小,并且当存在竞争性荧光速率常数时与ISC速率常数相比。除了来自金属配合物的纯荧光外,还审查了另外两种荧光发射,即延迟荧光和荧光-磷光双重发射。两种排放物也具有各自独特的特性,因此将以这种角度进行讨论。

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