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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >An energetics perspective on why there are so few triplet-triplet annihilation emitters
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An energetics perspective on why there are so few triplet-triplet annihilation emitters

机译:有能力的角度来看,为什么有这么少的三重三体歼灭发射器

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摘要

The efficiency of solar cells may be increased by utilizing photons with energies below the band gap of the absorber. This may be enabled by upconversion of low energy photons into high energy photonsviatriplet-triplet annihilation (TTA) in organic chromophores. The quantum yield of TTA is often low due to competing processes. The singlet pathway, where a high energy photon is emitted, is one of three possible outcomes of an encounter between two triplet excitons. The quintet pathway is often too high in energy to be accessible, leaving the triplet pathway as the main competing process. Using many-body perturbation theory in the GW approximation and the Bethe-Salpeter equation, we calculate the energy release in both the singlet and triplet pathways for 59 chromophores of different chemical families. We find that in most cases the triplet pathway is open and has a larger energy release than the singlet pathway. Thus, the energetics perspective explains why there are so few TTA emitters and why the quantum yield of TTA is typically low. That said, our results also indicate that the performance of emitters from known chemical families may be improved by chemical modifications, such as functionalization with side groups, and that new chemical families could be explored to discover more TTA emitters.
机译:通过利用具有低于吸收器的带隙的电极可以增加太阳能电池的效率。这可以通过低能量光子在有机发色团中的高能量光子血征 - 三重胶质湮灭(TTA)中的高能量光子的上转化来实现。由于竞争过程,TTA的量子产量通常很低。发射高能光子的单态途径是两种三重态激子之间遇到的三种可能结果中的一种。 Quintet途径往往是太高的能量,可以进入,将三重态途径留成主要竞争过程。在GW近似和贝特 - 排水管方程中使用许多身体扰动理论,我们计算出单态和三重态途径中的能量释放,用于59种不同的化学家族。我们发现,在大多数情况下,三重态途径是开放的,并且具有比单线途径更大的能量释放。因此,能量的透视解释为什么TTA发射器和为什么TTA的量子产量通常很低。也就是说,我们的结果还表明,通过化学修饰,例如用侧组的官能化,可以提高来自已知化学品家族的发射器的性能,并且可以探索新的化学系列以发现更多TTA发射器。

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