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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Polypyridyl complexes as electron transporting materials for inverted bulk heterojunction solar cells: the metal center effect
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Polypyridyl complexes as electron transporting materials for inverted bulk heterojunction solar cells: the metal center effect

机译:聚吡啶配合物作为反向大体积异质结太阳能电池的电子传输材料:金属中心效应

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摘要

The fundamental science behind the design of organic photovoltaic (OPV) cells lies in the formation of energy level gradients for efficient charge separation and collection. Tuning the energy levels at the device electrodes by the right choice of the components is a key requirement for achieving enhanced characteristics. Here we demonstrate control and optimization of OPV cell performance by using a set of polypyridyl complexes based on iron, ruthenium, and osmium centers with tunable frontier orbital energies as interlayers for inverted bulk heterojunction solar cells. We found that changing the metal center of isostructural transition-metal complexes results in evident shifts of the HOMO and LUMO energy levels and the work functions of the corresponding interlayers, which has a prominent effect on the device performance. We generalize our approach by combining the interlayers with different sets of photoactive materials to test the electron transporting as well as the hole blocking characteristics of the interlayers.
机译:有机光伏(OPV)电池设计背后的基础科学在于能级梯度的形成,以实现有效的电荷分离和收集。通过正确选择组件来调节器件电极上的能级是实现增强特性的关键要求。在这里,我们通过使用一组基于铁,钌和中心的聚吡啶基配合物,并具有可调的前沿轨道能量作为反向大容量异质结太阳能电池的中间层,来演示OPV电池性能的控制和优化。我们发现,改变同构过渡金属配合物的金属中心会导致HOMO和LUMO能级以及相应中间层的功函数发生明显变化,这对器件性能产生了显着影响。我们通过将中间层与不同组的光敏材料组合在一起来推广我们的方法,以测试中间层的电子传输以及空穴阻挡特性。

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