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首页> 外文期刊>Functional materials letters >Energy band and optical modeling of charge transport mechanism and photo-distribution of MoO_3/Al-doped MoO_3 in organic tandem cells
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Energy band and optical modeling of charge transport mechanism and photo-distribution of MoO_3/Al-doped MoO_3 in organic tandem cells

机译:MoT_3 / Al掺杂MoO_3在有机串联电池中的能带,电荷迁移机理和光分布的光学模型

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The promising potential of achieving high efficiency organic tandem cells due to the widened absorption spectrum range has resulted in significant research in novel device concepts such as the modification of the recombination layer. In this study, a typically used charge transport interlayer in the recombination layer, MoO3, is modified by tuning the energy band and work function, with the help of an energy band model, to achieve energetic alignment without additional metallic layers. The energy level tuning is demonstrated by the co-evaporation of aluminum, which results in a doping effect. This shifts the work function of pristine MoO3 from 5.8 eV to 4.3 eV. The shift is proposed to be due to the formation of oxidized Al3+ and reduced MoO6+ that generates further mid-gap defect states and this shift increases with respect to Al concentration. The energy band shift changes the transport mechanism from hole-transporting to electron-transporting and the modification is modeled in this work. This suggests that recombination layer of MoO3/Al-MoO3 may have better energetic alignment and integrating this modified recombination layer results in improvement in the stacked device efficiency from 1.38% to 3.38% with enhancement in J(sc),V-oc and fill factor. This enhancement is contributed from better aligned energy level and higher transparency of the recombination layer. The effective transparent recombination allows greater photon distribution to the top cell and increasing maximum matched photocurrent to the limiting subcell, thus improving photocurrent by 25% and overall efficiency up to 4.6%.
机译:由于吸收光谱范围的扩大,实现高效有机串联电池的潜在潜力已导致对新型器件概念(例如重组层的改性)的重大研究。在这项研究中,重组层中通常使用的电荷传输中间层MoO3通过在能带模型的帮助下调整能带和功函数来进行修改,从而实现了能量对准,而无需额外的金属层。铝的共蒸发表明能级的调整,这会导致掺杂效应。这将原始MoO3的功函数从5.8 eV转移到4.3 eV。据认为,这种偏移是由于形成了氧化的Al3 +和还原的MoO6 +所产生的,该MoO6 +产生了进一步的中间能隙缺陷状态,并且这种偏移相对于Al浓度而增加。能带位移将传输机理从空穴传输改变为电子传输,并在此工作中对修改进行了建模。这表明MoO3 / Al-MoO3的重组层可能具有更好的能量对准,并且集成此改良的重组层可导致堆叠器件效率从1.38%提高到3.38%,同时J(sc),V-oc和填充因子提高。这种增强是由于更好的对齐能级和重组层更高的透明度所致。有效的透明重组可以使更多的光子分布到顶部电池,并增加到限制子电池的最大匹配光电流,从而将光电流提高25%,总效率提高到4.6%。

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