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Understanding the Improved Stability of Hybrid Polymer Solar Cells Fabricated with Copper Electrodes

机译:了解使用铜电极制造的混合聚合物太阳能电池的稳定性提高

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It is known that atmospheric oxygen is essential for realizing the photovoltaic properties of P3HT-TiO2-based hybrid polymer solar cells because oxygen vacancies created in TiO2 can become recombination sites for charge carriers, causing photovoltaic properties like open-circuit voltage (V_(oc)) to decline quickly in an inert atmosphere. We demonstrate here that using an annealed Cu layer as hole collecting electrode results in a remarkably stable hybrid solar cell that maintains its photovoltaic parameters during 1 h of continuous testing in an inert atmosphere. An analysis of the data from photovoltaic device performance tests and X-ray photo electron spectroscopy (XPS) attributes this improvement to the tendency of Cu to form sulfide-like complexes with the S atoms on P3HT, thereby inducing a chemically driven vertical segregation of P3HT toward the hole-collecting metal electrode. Additionally, XPS depth profiling analysis shows that Cu atoms can diffuse up to the TiO2 layer and assist in filling up oxygen vacancies on the TiO2 surface, thus eliminating defects that can act as donors of free electrons and degrade photovoltaic performance in an inert atmosphere. We analyze these improvements by examining in situ the effect of Cu on the P3HT and TiO2 layers and on the organic-inorganic interface formed between them inside a hybrid solar cell.
机译:众所周知,大气中的氧气对于实现基于P3HT-TiO2的混合聚合物太阳能电池的光伏性能至关重要,因为TiO2中产生的氧空位会变成电荷载流子的复合位点,从而导致光伏特性(例如开路电压(V_(oc))) )在惰性气氛中迅速下降。我们在此证明,使用退火的Cu层作为空穴收集电极会产生非常稳定的混合太阳能电池,该混合太阳能电池在惰性气氛中连续测试1小时期间可以保持其光伏参数。对来自光伏器件性能测试和X射线光电子能谱(XPS)的数据的分析将这种改善归因于Cu倾向于与P3HT上的S原子形成硫化物样的络合物,从而诱导了P3HT的化学驱动的垂直偏析朝向空穴收集金属电极。此外,XPS深度剖析分析表明,Cu原子可以扩散到TiO2层,并有助于填充TiO2表面上的氧空位,从而消除了在惰性气氛中可以充当自由电子给体并降低光伏性能的缺陷。我们通过检查铜对P3HT和TiO2层以及在混合太阳能电池内它们之间形成的有机-无机界面的影响,分析了这些改进。

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