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Combinatorial screening of halide perovskite thin films and solar cells by mask-defined IR laser molecular beam epitaxy

机译:掩模定义的红外激光分子束外延对卤化钙钛矿薄膜和太阳能电池的组合筛选

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摘要

As an extension of combinatorial molecular layer epitaxy via ablation of perovskite oxides by a pulsed excimer laser, we have developed a laser molecular beam epitaxy (MBE) system for parallel integration of nano-scaled thin films of organic–inorganic hybrid materials. A pulsed infrared (IR) semiconductor laser was adopted for thermal evaporation of organic halide (A-site: CH3NH3I) and inorganic halide (B-site: PbI2) powder targets to deposit repeated A/B bilayer films where the thickness of each layer was controlled on molecular layer scale by programming the evaporation IR laser pulse number, length, or power. The layer thickness was monitored with an in situ quartz crystal microbalance and calibrated against ex situ stylus profilometer measurements. A computer-controlled movable mask system enabled the deposition of combinatorial thin film libraries, where each library contains a vertically homogeneous film with spatially programmable A- and B-layer thicknesses. On the composition gradient film, a hole transport Spiro-OMeTAD layer was spin-coated and dried followed by the vacuum evaporation of Ag electrodes to form the solar cell. The preliminary cell performance was evaluated by measuring I-V characteristics at seven different positions on the 12.5 mm × 12.5 mm combinatorial library sample with seven 2 mm × 4 mm slits under a solar simulator irradiation. The combinatorial solar cell library clearly demonstrated that the energy conversion efficiency sharply changes from nearly zero to 10.2% as a function of the illumination area in the library. The exploration of deposition parameters for obtaining optimum performance could thus be greatly accelerated. Since the thickness ratio of PbI2 and CH3NH3I can be freely chosen along the shadow mask movement, these experiments show the potential of this system for high-throughput screening of optimum chemical composition in the binary film library and application to halide perovskite solar cell.
机译:通过脉冲准分子激光烧蚀钙钛矿氧化物,扩展了组合分子层外延,我们开发了一种激光分子束外延(MBE)系统,用于有机-无机杂化材料的纳米级薄膜的平行集成。采用脉冲红外(IR)半导体激光器热蒸发有机卤化物(A-位:CH3NH3I)和无机卤化物(B-位:PbI2)粉末靶,以沉积重复的A / B双层膜,其中每层的厚度为通过编程蒸发红外激光脉冲的数量,长度或功率,可以在分子层规模上进行控制。用原位石英晶体微量天平监测层的厚度,并针对非原位测针轮廓仪测量进行校准。计算机控制的可移动掩模系统能够沉积组合的薄膜库,其中每个库都包含具有空间可编程A层和B层厚度的垂直均质膜。在组成梯度膜上,旋涂空穴传输Spiro-OMeTAD层并干燥,然后真空蒸发Ag电极以形成太阳能电池。在太阳能模拟器照射下,通过测量12.5 mm×12.5 mm组合文库样品上的七个不同位置的I-V特性并使用七个2 mm×4 mm的狭缝来评估电池的初步性能。组合式太阳能电池库清楚地表明,能量转换效率根据库中的照明面积从近零急剧变化到10.2%。因此,可以极大地加速探索沉积参数以获得最佳性能。由于可以沿荫罩运动自由选择PbI2和CH3NH3I的厚度比,因此这些实验表明,该系统具有潜力,可以高通量筛选二元薄膜库中的最佳化学组成,并应用于卤化钙钛矿太阳能电池。

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