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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Symmetry-Based Design Strategy for Unprecedentedly Fast Decaying Thermally Activated Delayed Fluorescence (TADF). Application to Dinuclear Cu(I) Compounds
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Symmetry-Based Design Strategy for Unprecedentedly Fast Decaying Thermally Activated Delayed Fluorescence (TADF). Application to Dinuclear Cu(I) Compounds

机译:基于对称的基于对称的设计策略,用于前所未有的快速衰减热激活延迟荧光(TADF)。 施加到二核Cu(I)化合物

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摘要

Inspired by molecular crystal theory of coupling symmetry-related transition dipole moments, we develop a model for rational design of Cu(I) complexes to achieve short TADF (thermally activated delayed fluorescence) decay times. This is, for example, important to reduce OLED stability problems and roll-off effects. Guided by the model, we design a new class of Cu(I) dimers focusing on Cu-2(tppb)(PPh3)(2)Cl-2 2 (tppb(PPh3)(2) = 1,2,4,5-tetrakis(diphenylphosphino)benzene). Indeed, this class of compounds shows particularly short TADF decay times as evidenced by luminescence studies over a temperature range of 1.5 K <= T <= 300 K and, thus, supports the proposed design strategy. The model is further supported by TD-DFT calculations. A key property of the strategy is that the new dimer(s) exhibit a drastically faster radiative rate of the transition between the lowest excited singlet state and the ground state than the related monomer, Cu(dppb)(PPh3)Cl 1 (dppb = 1,2-bis(diphenylphosphino)benzene). This is even valid at a small singlet-triplet energy gap of Delta E(S-1-T-1) = 390 cm(-1) (48 meV). Accordingly, we find a benchmark TADF decay time for the Cu(I) dimer 2 of only 1.2 mu s (radiative decay: 1.5 mu s). This is a factor of about three times shorter than found so far for any other Cu(I) complex with a similarly small energy gap. The presented design strategy seems to be of general validity.
机译:灵感来自偶联对称相关的转变偶极偶像的分子晶体理论,我们开发了Cu(I)复合物的合理设计模型,以实现短的TADF(热激活的延迟荧光)衰减时间。例如,这对于降低OLED稳定性问题和滚动效果来说是重要的。由模型为指导,设计一类新的Cu(I)二聚体,聚焦在Cu-2(TPPB)(PPH3)(2)CL-2 2(TPPB(PPH3)(2)= 1,2,4,5 -tetrakis(二苯基膦基)苯)。实际上,这类化合物特别短的TADF衰变时间,其发光研究所证明的1.5k <= T <= 300k的温度范围,因此支持所提出的设计策略。 TD-DFT计算进一步支持该模型。该策略的一个关键特性是,新二聚体在最低激发态单位和地态之间表现出大幅度的过渡的过渡率而不是相关的单体,Cu(DPPB)(PPH3)Cl 1(DPPB = 1,2-双(二苯基膦基)苯)。这对于ΔE(s-1-t-1)= 390cm(-1)(48mev)的小单态 - 三重态能隙甚至有效。因此,我们发现仅1.2μs(辐射衰减:1.5μs)的Cu(i)二聚体2的基准Tadf衰减时间。对于任何其他Cu(i)复合物,这是与类似的小的能隙相似的任何其他Cu(I)复合物的比例短约三倍。呈现的设计策略似乎具有一般有效性。

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    Univ Regensburg Inst Phys Chem Univ Str 31 D-93053 Regensburg Germany;

    Chinese Acad Sci Fujian Inst Res Struct Matter State Key Lab Struct Chem Fuzhou 350002 Fujian Peoples R China;

    Chinese Acad Sci Fujian Inst Res Struct Matter State Key Lab Struct Chem Fuzhou 350002 Fujian Peoples R China;

    Chinese Acad Sci Fujian Inst Res Struct Matter State Key Lab Struct Chem Fuzhou 350002 Fujian Peoples R China;

    Univ Regensburg Inst Phys Chem Univ Str 31 D-93053 Regensburg Germany;

    Univ Regensburg Inst Phys Chem Univ Str 31 D-93053 Regensburg Germany;

    Univ Regensburg Inst Phys Chem Univ Str 31 D-93053 Regensburg Germany;

    Chinese Acad Sci Fujian Inst Res Struct Matter State Key Lab Struct Chem Fuzhou 350002 Fujian Peoples R China;

    Chinese Acad Sci Fujian Inst Res Struct Matter State Key Lab Struct Chem Fuzhou 350002 Fujian Peoples R China;

    Univ Regensburg Inst Phys Chem Univ Str 31 D-93053 Regensburg Germany;

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  • 正文语种 eng
  • 中图分类 工程材料学 ;
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