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Fabrication of Efficient and Stable CsPbI_3 Perovskite Solar Cells through Cation Exchange Process

机译:通过阳离子交换法制备高效稳定的CsPbI_3钙钛矿型太阳能电池

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Inorganic lead halide perovskites have attracted attention due to their tolerance to higher processing temperature and higher bandgap suitable for tandem solar cell application. Not only do they improve cell stability and efficiency, they also reveal many interesting and un-anticipated material qualities. This work reports a simple cation exchange growth (CEG) method for fabricating inorganic high-quality cesium lead iodide (CsPbI3) by adding methylammonium iodide (MAI) additive in the precursor. X-ray diffraction results reveal a multi-stage film formation process whereby i) MAPbI(3) perovskite first formed that acts as a perovskite template for ii) subsequent ion exchange whereby the MA(+) ions in the MAPbI(3) are replaced by Cs+ (as temperature ramps up) and iii) form g-phase perovskite CsPbI3. Optical microscopy, photoluminescence, and electrical characterizations reveal that the CEG process produces high-quality film with better absorption, uniform and dense film with better interface, lower defects, and better stability. Using the CEG approach, the power conversion efficiency of the best CsPbI3 solar cell is significantly increased up to 14.1% for the device fabricated using 1.0 m MAI additive. The outcome is beneficial for further improvement of inorganic perovskite solar cells and their application in perovskite-silicon tandem devices.
机译:无机卤化铅钙钛矿因其对适用于串联太阳能电池应用的较高处理温度和较高带隙的耐受性而备受关注。它们不仅提高了细胞的稳定性和效率,而且还揭示了许多有趣且出乎意料的材料质量。这项工作报告了一种简单的阳离子交换生长(CEG)方法,该方法是通过在前体中添加甲基碘化碘(MAI)添加剂来制造无机优质碘化铯碘化铅(CsPbI3)。 X射线衍射结果显示了一个多阶段的成膜过程,其中i)首次形成MAPbI(3)钙钛矿,它作为钙钛矿模板用于ii)随后的离子交换,从而取代了MAPbI(3)中的MA(+)离子通过Cs +(随着温度的升高)和iii)形成G相钙钛矿CsPbI3。光学显微镜,光致发光和电学表征表明,CEG工艺可生产出具有更好吸收性的高质量薄膜,均匀且致密的薄膜,具有更好的界面,更低的缺陷和更好的稳定性。使用CEG方法,对于使用1.0 m MAI添加剂制造的设备,最好的CsPbI3太阳能电池的功率转换效率显着提高到14.1%。该结果对于无机钙钛矿太阳能电池的进一步改进及其在钙钛矿-硅串联装置中的应用是有益的。

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