Unraveling non-radiative decay channels of exciplexes to construct efficient red emitters for organic light-emitting diodes†

IF 7.6 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Heng-Yuan Zhang, Ming Zhang, Hao Zhuo, Hao-Yu Yang, Bo Han, Yong-Hao Zheng, Hui Wang, Hui Lin, Si-Lu Tao, Cai-Jun Zheng and Xiao-Hong Zhang
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Abstract

Exciplex emitters naturally have thermally activated delayed fluorescence characteristics due to their spatially separated molecular orbitals. However, the intermolecular charge transfer potentially induces diverse non-radiative decay channels, severely hindering the construction of efficient red exciplexes. Thus, a thorough comprehension of this energy loss is of paramount importance. Herein, different factors, including molecular rigidity, donor–acceptor interactions and donor–donor/acceptor–acceptor interactions, that impact the non-radiative decay were systematically investigated using contrasting exciplex emitters. The exciplex with rigid components and intermolecular hydrogen bonds showed a photoluminescence quantum yield of 84.1% and a singlet non-radiative decay rate of 1.98 × 106 s−1 at an optimized mixing ratio, respectively, achieving a 3.3-fold increase and a 70% decrease compared to the comparison group. In the electroluminescent device, a maximum external quantum efficiency of 23.8% was achieved with an emission peak of 608 nm, which represents the state-of-the-art organic light-emitting diodes using exciplex emitters. Accordingly, a new strategy is finally proposed, exploiting system rigidification to construct efficient red exciplex emitters that suppress non-radiative decay.

Abstract Image

揭示外复合物的非辐射衰变通道,构建有机发光二极管的高效红色发光体
由于分子轨道在空间上相互分离,共轭发射体自然具有热激活延迟荧光特性。然而,分子间电荷转移可能会诱发多种非辐射衰变通道,严重阻碍了高效红色赋形剂的构建。因此,彻底了解这种能量损失至关重要。在此,我们利用对比鲜明的赋形剂发射体系统地研究了影响非辐射衰变的不同因素,包括分子刚性、供体-受体相互作用以及供体-供体/受体-受体相互作用。在优化混合比的条件下,具有刚性成分和分子间氢键的赋形剂的光量子产率为 84.1%,单线非辐射衰减率为 1.98×106 s-1,分别比对比组提高了 3.3 倍和降低了 70%。在电致发光器件中,外部量子效率最高可达 23.8%,发射峰值为 608 nm,代表了使用赋形剂发光体的有机发光二极管的最新水平。因此,最终提出了一种新策略,即利用系统刚性来构建可抑制非辐射衰变的高效红色赋形发光体。
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来源期刊
Chemical Science
Chemical Science CHEMISTRY, MULTIDISCIPLINARY-
CiteScore
14.40
自引率
4.80%
发文量
1352
审稿时长
2.1 months
期刊介绍: Chemical Science is a journal that encompasses various disciplines within the chemical sciences. Its scope includes publishing ground-breaking research with significant implications for its respective field, as well as appealing to a wider audience in related areas. To be considered for publication, articles must showcase innovative and original advances in their field of study and be presented in a manner that is understandable to scientists from diverse backgrounds. However, the journal generally does not publish highly specialized research.
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