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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >The Role of C_(60) Barrier Layer in Improving the Performances of Efficient Polymer-Based Photovoltaic Devices: An AFM/EDXR Time-Resolved Study
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The Role of C_(60) Barrier Layer in Improving the Performances of Efficient Polymer-Based Photovoltaic Devices: An AFM/EDXR Time-Resolved Study

机译:C_(60)阻挡层在提高基于聚合物的高效光伏器件性能中的作用:AFM / EDXR时间分辨研究

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Here, we report an in situ study of the effect of morphological/structural aging processes on polymer-based photovoltaic cell performances. The devices were provided with a fullerene film as a barrier layer between the active element and the metallic cathode. The experimental method adopted consists of the joint use of atomic force microscopy (AFM) and energy dispersive X-ray reflectivity (EDXR), an original coupling particularly effective in the study of stratified media. These techniques were applied first to the intermediate stages of the device construction and, finally, to a complete cell. The problems related with the surface/interface modifications of the devices elements in operating conditions were investigated in depth, with particular concern on the role of the C_(60) barrier layer. The C_(60) film surface topography was monitored by AFM experiments during illumination, which evidenced a surface reorganization of the C_(60) layer molecules over time. Conversely, the C_(60) film bulk and its interface with the active layer, investigated by EDXR analysis in the same conditions, turned out to remain unchanged. Then the cathode buried interface of a complete cell was studied, by EDXR measurements in working conditions, thus demonstrating that the C_(60) layer guarantees a good structural stability of the cell. In addition, the in situ AFM/EDXR characterization established that the observed reorganization process of the C_(60) layer molecules does not affect the film physical barrier role. This finding was confirmed by power conversion efficiency measurements, showing that the C_(60)/LiF/Al cathode cell efficiency is preserved over time. This work also demonstrates how the morphological properties of organic device layered components, investigated in situ by the two noninvasive and independent AFM and EDXR techniques, may provide a structural interpretation of the performance preservation or fading.
机译:在这里,我们报告了形态/结构老化过程对基于聚合物的光伏电池性能的影响的原位研究。该装置在活性元件和金属阴极之间设有富勒烯膜作为阻挡层。所采用的实验方法包括原子力显微镜(AFM)和能量色散X射线反射率(EDXR)的联合使用,这是一种在分层介质研究中特别有效的原始耦合。这些技术首先应用于设备构造的中间阶段,最后应用于整个单元。深入研究了与器件元件在工作条件下的表面/界面修改有关的问题,特别是考虑了C_(60)阻挡层的作用。在照明过程中,通过AFM实验监控了C_(60)膜的表面形貌,这证明了C_(60)层分子随时间的表面重组。相反,在相同条件下通过EDXR分析研究的C_(60)薄膜块及其与活性层的界面却保持不变。然后,通过在工作条件下进行EDXR测量,研究了整个电池的阴极掩埋界面,从而证明C_(60)层保证了电池的良好结构稳定性。另外,原位AFM / EDXR表征表明,观察到的C_(60)层分子的重组过程不会影响薄膜的物理屏障作用。功率转换效率测量结果证实了这一发现,表明随着时间的推移,C_(60)/ LiF / Al阴极电池的效率得以保持。这项工作还证明了通过两种非侵入性和独立的AFM和EDXR技术原位研究的有机设备分层组件的形态学特性如何为性能保持或褪色提供结构解释。

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