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Highly phosphorescent platinum(II) emitters: photophysics, materials and biological applications

机译:高度磷光的铂(II)发射体:光物理,材料和生物学应用

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In recent years a blossoming interest in the synthesis, photophysics and application of phosphorescent Pt(II) complexes, particularly on their uses in bioimaging, photocatalysis and phosphorescent organic light-emitting diodes (OLEDs), has been witnessed. The superior performance of phosphorescent Pt(II) complexes in these applications is linked to their diverse spectroscopic and photophysical properties, which can be systematically modulated by appropriate choices of auxiliary ligands. Meanwhile, an important criterion for the practical application of phosphorescent metal complexes is their stability which is crucial for biological utilization and industrial OLED applications. Taking both the luminescence properties and stability into consideration, chelating ligands having rigid scaffolds and with strong sigma-donor atoms are advantageous for the construction of highly robust phosphorescent Pt(II) complexes. The square-planar coordination geometry endows Pt(II) complexes with the intriguing spectroscopic and photophysical properties associated with their intermolecular interactions in both the ground and excited states. In this article, we discuss the design and synthesis of phosphorescent Pt(II) complexes with elaboration on the effects of ligands on the structure and luminescence properties. Based on their photophysical and emission properties, we intend to shed light on the great promise of highly robust phosphorescent Pt(II) emitters in an array of applications from molecular materials to biosensors.
机译:近年来,人们对磷光Pt(II)配合物的合成,光物理和应用,特别是在生物成像,光催化和磷光有机发光二极管(OLED)中的用途,产生了浓厚的兴趣。磷光Pt(II)配合物在这些应用中的优越性能与其多样的光谱和光物理特性有关,可以通过适当选择辅助配体来系统地调节它们。同时,磷光金属配合物实际应用的重要标准是其稳定性,这对于生物利用和工业OLED应用至关重要。考虑到发光特性和稳定性,具有刚性支架和强σ-供体原子的螯合配体对于构建高强度磷光Pt(II)配合物是有利的。方平面配位几何赋予Pt(II)配合物与基态和激发态下的分子间相互作用相关的引人入胜的光谱和光物理特性。在本文中,我们讨论了磷光Pt(II)配合物的设计和合成,并详细阐述了配体对结构和发光性能的影响。基于它们的光物理性质和发射性质,我们打算揭示从分子材料到生物传感器的一系列应用中高度耐用的磷光Pt(II)发射器的巨大前景。

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