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High-Performance Inverted Solar Cells Based on Blend Films of ZnO Naoparticles and TiO2 Nanorods as a Cathode Buffer Layer

机译:基于ZnO纳米粒子和TiO2纳米棒的混合膜作为阴极缓冲层的高性能倒置太阳能电池

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摘要

We reported the favorable cathode buffer layer based on a blend of ZnO nanoparticles (NPs) and TiO2 nanorods (NRs) applied to inverted solar cells. In addition to the high optical transmittance, the resultant blend film gave a relatively dense film with lower roughness than that of the respective single-component film. This improved the interface contact between the buffer layer and photoactive layer and therefore reduced the contact resistance and leakage current. Moreover, the combination of NRs and NPs increased the efficiency of electron transport and collection by providing both a direct path for electron transport from TiO2 NRs and a large contact area between ZnO NPs and the active layer. Consequently, both the short-circuit current density (J_(sc)) and fill factor (FF) in the device were improved, leading to an improvement of the device performance. The best power conversion efficiency (PCE) based on the blend film as the buffer layer reached 8.82%, which was preferable to those of a single ZnO NP film (7.76%) and a TiO2 NR-based device (7.66%).
机译:我们报道了基于应用于倒置太阳能电池的ZnO纳米颗粒(NPs)和TiO2纳米棒(NRs)混合物的有利阴极缓冲层。除了高透光率之外,所得的共混膜还提供了相对致密的膜,其粗糙度低于各个单组分膜的粗糙度。这改善了缓冲层和光敏层之间的界面接触,因此降低了接触电阻和泄漏电流。此外,NRs和NPs的组合通过提供从TiO2 NRs进行电子传输的直接路径以及ZnO NPs和活性层之间的较大接触面积,提高了电子传输和收集的效率。因此,改善了装置中的短路电流密度(J_(sc))和填充因子(FF),从而改善了装置性能。基于混合膜作为缓冲层的最佳功率转换效率(PCE)达到8.82%,比单个ZnO NP膜(7.76%)和TiO2 NR基器件(7.66%)的最佳。

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