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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Synthesis, photophysics and reverse saturable absorption of bipyridyl platinum(ii) bis(arylfluorenylacetylide) complexes
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Synthesis, photophysics and reverse saturable absorption of bipyridyl platinum(ii) bis(arylfluorenylacetylide) complexes

机译:联吡啶铂(ii)双(芳基芴基乙炔)配合物的合成,光物理性质和反饱和吸收

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A series of Pt(ii) bipyridyl complexes with different aryl substituents (Ar = naphthyl (1a), anthryl (1b), pyrenyl (1c) and phenothiazyl (1d)) on the fluorenylacetylide ligands are synthesized and investigated. The influence of the aryl substituent on the photophysics of these complexes is systematically investigated by spectroscopic methods and simulated by time dependent density functional theory (TD-DFT). All complexes exhibit ligand-centered ~1π,π* transitions significantly admixed with the metal-to-ligand charge transfer (~1MLCT)/ligand-to-ligand charge transfer (~1LLCT) transitions in the UV and blue spectral region, and broad, structureless ~1MLCT/~1LLCT absorption bands in the visible spectral region. All complexes are emissive in solution at room temperature, with the fluorescence originating predominantly from the ~1MLCT/~1LLCT states. The triplet emitting state is dominated by the ~3π,π* state localized on the fluorenylacetylide motif and mixed with some ~3ML′CT character (metal-to-fluorenylacetylide ligand charge transfer) for 1a, 1b and 1d. For 1c, the phosphorescence predominantly originates from the pyrene localized ~3π,π* state. The variation in the photophysical properties is related to the twisting angle of the aryl substituent from the fluorenyl plane, which defines the conjugation between the substituents and fluorenylacetylide ligands and, consequently, alters the energy and intensity of absorption and emission in these complexes. 1a-1d also exhibit broadband triplet excited-state absorption in the visible spectral region. Therefore, they show strong reverse saturable absorption at 532 nm for nanosecond laser pulses as demonstrated by the nonlinear transmission experiment.
机译:合成并研究了一系列具有不同芳基取代基(Ar =萘基(1a),蒽基(1b),pyr基(1c)和吩噻唑基(1d))的Pt(ii)二吡啶基配合物。通过光谱方法系统地研究了芳基取代基对这些配合物光物理的影响,并通过时变密度泛函理论(TD-DFT)进行了模拟。所有复合物均表现出以配体为中心的〜1π,π*跃迁,在紫外和蓝色光谱区域中与金属至配体的电荷转移(〜1MLCT)/配体至配体的电荷转移(〜1LLCT)跃迁显着混合,在可见光谱区域无结构的〜1MLCT /〜1LLCT吸收带。所有复合物在室温下均在溶液中发射,荧光主要来自〜1MLCT /〜1LLCT状态。三重态发射态主要由芴基乙炔基序上的〜3π,π*状态决定,并与1a,1b和1d的〜3ML'CT特性(金属-芴基乙炔配体电荷转移)混合。对于1c,磷光主要来自the的局域〜3π,π*状态。光物理性质的变化与芳基取代基相对于芴基平面的扭曲角有关,后者定义了取代基与芴基乙炔配体之间的共轭,因此改变了这些络合物的能量和吸收与发射的强度。图1a-1d还显示了在可见光谱区域的宽带三重态激发态吸收。因此,如非线性传输实验所示,它们对纳秒激光脉冲在532 nm处显示出强大的反向饱和吸收。

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