INAC/SP2M (UMR-E CEA-UJF)/LEMMA, Minatec, CEA-Grenoble, 17 rue des Martyrs, F-38054 Grenoble cedex 9, France.
Nanoscale. 2013 Nov 21;5(22):10945-55. doi: 10.1039/c3nr03202g. Epub 2013 Sep 23.
The present work focuses on the study of the three-dimensional (3D) morphology of polymer and nanoparticle hybrid nanocomposites used as active layers in solution-processed solar cells. The hybrid consists of blends of regioregular poly(3-alkylthiophene) and CdSe nanorods. Electron tomography (ET) analysis performed in high-angle annular dark-field scanning transmission electron microscopy (HAADF-STEM) allows resolving single nanorods in the hybrid blend. These results are compared with those obtained using focused ion beam coupled with scanning electron microscopy (FIB-SEM), operated in a so-called 3D "slice-and-view" mode. This technique allows 3D information to be obtained on a whole device stack (hybrid active layers plus electrodes and the substrate) for significantly larger surface areas than with ET (~10 vs. ~0.1 μm(2)). The combination of ET and 3D FIB "slice-and-view" reconstructions provides complementary and coherent information on the 3D morphology of the hybrid systems at different length scales. Phase separation between the nanoparticles and the polymer is investigated by a quantitative analysis of the reconstructed volumes and is related to the performances of the hybrid devices.
本工作重点研究了作为溶液处理太阳能电池活性层的聚合物和纳米粒子杂化纳米复合材料的三维(3D)形态。该杂化材料由区域规整聚(3-烷基噻吩)和 CdSe 纳米棒的共混物组成。在高角环形暗场扫描透射电子显微镜(HAADF-STEM)中进行的电子断层扫描(ET)分析允许在杂化共混物中分辨出单个纳米棒。这些结果与使用聚焦离子束结合扫描电子显微镜(FIB-SEM)获得的结果进行了比较,后者以所谓的 3D“切片和查看”模式运行。该技术允许在整个器件堆叠(杂化活性层加上电极和基底)上获得 3D 信息,其表面积比 ET 大得多(10 比0.1 μm(2))。ET 和 3D FIB“切片和查看”重建的组合提供了杂化系统在不同长度尺度上的 3D 形态的互补和一致信息。通过对重构体积的定量分析研究了纳米粒子和聚合物之间的相分离,并将其与杂化器件的性能相关联。