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首页> 外文期刊>Advanced Functional Materials >Charge Transport in a Highly Phosphorescent lridium(III)Complex-Cored Dendrimer with Double Dendrons
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Charge Transport in a Highly Phosphorescent lridium(III)Complex-Cored Dendrimer with Double Dendrons

机译:具有双树枝状的高磷铱(III)复杂芯树枝状大分子中的电荷传输。

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摘要

The charge transporting properties of a phosphorescent iridium(lll) complex-cored dendrimer, with two dendrons attached to each ligand of the core are reported. The results show that the high photoluminescence quantum yield of this material is obtained without compromising charge transport. The hole mobility values are reported over a wide range of temperatures and electric fields using the charge-generation layer time-of-flight technique. The results are analysed using the Gaussian disorder model (CDM), the correlated disorder model, the polaronic correlated disorder model, and the short-range correlated Gaussian disorder model. It is found that the GDM model gives the most comprehensive description of hole transport in this material. In spite of its larger size, the hole mobility of the doubly dendronised material compares favourably with that of a smaller singly dendronised material, and its spherical shape leads to low energetic disorder and clearly non-dispersive charge transport. This shows how molecular shape can be used to combine favourable photoluminescence and charge-transporting properties.
机译:报道了磷光铱(III)配合物核心的树枝状大分子的电荷传输性质,其中两个树枝状分子连接到核心的每个配体上。结果表明,在不损害电荷传输的情况下获得了该材料的高光致发光量子产率。使用电荷产生层飞行时间技术在很宽的温度和电场范围内报告了空穴迁移率值。使用高斯障碍模型(CDM),相关障碍模型,极化子相关障碍模型和短程相关高斯障碍模型分析结果。发现,GDM模型对该材料中的空穴传输提供了最全面的描述。尽管其尺寸较大,但双树突状材料的空穴迁移率与较小的单树突状材料的空穴迁移率相比还是有利的,并且其球形形状导致低的能量紊乱和明显的非分散电荷传输。这表明如何使用分子形状来组合有利的光致发光和电荷传输性质。

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  • 来源
    《Advanced Functional Materials 》 |2012年第1期| p.157-165| 共9页
  • 作者单位

    Organic Semiconductor Centre SUPA, School of Physics and Astronomy University of St Andrews, North Haugh St Andrews KY16 9SS, UK;

    Centre for Organic Photonics and Electronics The University of Queensland, Chemistry Building Queensland 4072, Australia;

    Department of Chemistry Chemistry Research Laboratory University of Oxford Mansfield Road, Oxford, OX1 3TA, UK;

    Centre for Organic Photonics and Electronics The University of Queensland, Chemistry Building Queensland 4072, Australia;

    Organic Semiconductor Centre SUPA, School of Physics and Astronomy University of St Andrews, North Haugh St Andrews KY16 9SS, UK;

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