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Approximately 800-nm-Thick Pinhole-Free Perovskite Films via Facile Solvent Retarding Process for Efficient Planar Solar Cells

机译:通过适用于高效的平面太阳能电池的容易溶剂延迟过程,通过容易溶剂延迟方法进行大约800nm厚的针孔膜

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摘要

Device performance of organometal halide perovskite solar cells significantly depends on the quality and thickness of perovskite absorber films. However, conventional deposition methods often generate pinholes within similar to 300 nm-thick perovskite films, which are detrimental to the large area device manufacture. Here we demonstrated a simple solvent retarding process to deposit uniform pinhole free perovskite films with thicknesses up to similar to 800 nm. Solvent evaporation during the retarding process facilitated the components separation in the mixed halide perovskite precursors, and hence the final films exhibited pinhole free morphology and large grain sizes. In addition, the increased precursor concentration after solvent-retarding process led to thick perovskite films. Based on the uniform and thick perovskite films prepared by this convenient process, a champion device efficiency up to 16.8% was achieved. We believe that this simple deposition procedure for high quality perovskite films around micrometer thickness has a great potential in the application of large area perovskite solar cells and other optoelectronic devices.
机译:有机卤化物钙钛矿太阳能电池的装置性能显着取决于钙钛矿吸收膜的质量和厚度。然而,传统的沉积方法通常会产生类似于300nm厚的钙钛矿薄膜的针孔,这对大区域装置制造有害。在这里,我们证明了一种简单的溶剂延迟过程,可以用厚度沉积均匀的针孔无钙钛矿薄膜,其厚度与800nm相似。在延迟过程中溶剂蒸发促进了混合卤化卤化物前体中分离的组分,因此最终膜表现出针孔的无晶粒形态和大粒尺寸。此外,溶剂延迟过程后的前体浓度增加导致厚钙钛矿薄膜。基于通过这种方便的工艺制备的均匀和厚的钙钛矿薄膜,实现了高达16.8%的冠军设备效率。我们认为,这种简单的沉积过程为高质量的钙钛矿薄膜薄膜厚度在大面积钙钛合金太阳能电池和其他光电器件的应用中具有很大的潜力。

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