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首页> 外文期刊>Nanoscale >Analysing the effect of crystal size and structure in highly efficient CH3NH3PbI3 perovskite solar cells by spatially resolved photo- and electroluminescence imaging
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Analysing the effect of crystal size and structure in highly efficient CH3NH3PbI3 perovskite solar cells by spatially resolved photo- and electroluminescence imaging

机译:分析晶体的大小和结构的影响在高效CH3NH3PbI3钙钛矿太阳能细胞的空间照片,和解决致发光成像

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摘要

CH3NH3PbI3 perovskite solar cells with a mesoporous TiO2 layer and spiro-MeOTAD as a hole transport layer (HTL) with three different CH3NH3I concentrations (0.032 M, 0.044 M and 0.063 M) were investigated. Strong variations in crystal size and morphology resulting in diversified cell efficiencies (9.2%, 16.9% and 12.3%, respectively) were observed. The physical origin of this behaviour was analysed by detailed characterization combining current-voltage curves with photo-and electroluminescence (PL and EL) imaging as well as light beam induced current measurements (LBIC). It was found that the most efficient cell shows the highest luminescence and the least efficient cell is most strongly limited by non-radiative recombination. Crystal size, morphology and distribution in the capping layer and in the porous scaffold strongly affect the non-radiative recombination. Moreover, the very non-uniform crystal structure with multiple facets, as evidenced by SEM images of the 0.032 M device, suggests the creation of a large number of grain boundaries and crystal dislocations. These defects give rise to increased trap-assisted non-radiative recombination as is confirmed by high-resolution mu-PL images. The different imaging techniques used in this study prove to be well-suited to spatially investigate and thus correlate the crystal morphology of the perovskite layer with the electrical and radiative properties of the solar cells and thus with their performance.
机译:CH3NH3PbI3钙钛矿太阳能电池用介孔二氧化钛层和spiro-MeOTAD作为一个洞传输层(HTL)与三个不同的(0.032米、0.044米和CH3NH3I浓度0.063米)。晶体大小和形态导致多样化的细胞效率(9.2%、16.9%和分别为12.3%)被观察到。这种行为的起源被详细的分析特征结合电流电压曲线与照片和致发光(PL和EL)成像以及光线感应电流测量(LBIC)。高效的细胞显示了最高发光最有效最强烈的细胞有限无辐射复合。在覆盖层形态和分布和多孔支架的强烈影响无辐射复合。不均匀的晶体结构与多个方面,通过SEM图像的0.032设备,显示大量的创建晶界和水晶混乱。这些缺陷会导致增加trap-assisted无辐射复合证实了高分辨率mu-PL图像。不同的成像技术用于这项研究被证明是适合空间调查因此关联的晶体结构钙钛矿与电气和层辐射性能的太阳能电池,因此与他们的性能。

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