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Unveiling Property of Hydrolysis-Derived DMAPbI3 for Perovskite Devices: Composition Engineering, Defect Mitigation, and Stability Optimization

机译:揭开水解衍生DMAPBI3的特性,用于钙钛矿装置:组成工程,缺陷缓解和稳定性优化

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摘要

Summary: Additive engineering has become increasingly important for making high-quality perovskite solar cells (PSCs), with a recent example involving acid during fabrication of cesium-based perovskites. Lately, it has been suggested that this process would introduce dimethylammonium ((CH3)2NH2+, DMA+) through hydrolysis of the organic solvent. However, material composition of the hydrolyzed product and its effect on the device performance remain to be understood. Here, we present an in-depth investigation of the hydrolysis-derived material (i.e., DMAPbI3) and detailed analysis of its role in producing high-quality PSCs. By varying the ratio of CsI/DMAPbI3 in the precursor, we achieve high-quality CsxDMA1-xPbI3 perovskite films with uniform morphology, low density of trap states, and good stability, leading to optimized power conversion efficiency up to 14.3%, with over 85% of the initial efficiency retained after ∼20 days in air without encapsulation. Our findings offer new insights into producing high-quality Cs-based perovskite materials. : Energy Sustainability; Materials Characterization; Energy Materials Subject Areas: Energy Sustainability, Materials Characterization, Energy Materials
机译:简介:添加工程越来越重要,使高质量的钙钛矿太阳能电池(PSCs)具有最近涉及酸性在基于铯的Perovskites期间的酸。最近,已经提示该方法将通过有机溶剂的水解引入二甲基铵((CH3)2NH2 +,DMA +)。然而,水解产物的材料组成及其对器件性能的影响仍然被理解。在这里,我们对水解衍生材料(即DMAPBI3)进行了深入的研究,并详细分析了其在生产高质量PSC中的作用。通过改变前体中的CSI / DMAPBI3的比例,我们通过均匀形态,低陷阱状态的低密度和良好的稳定性实现了高质量的CSXDMA1-XPBI3钙钛矿薄膜,导致优化的电力转换效率高达14.3%,超过85在没有封装的空气中〜20天后保留初始效率的百分比。我们的调查结果为生产高质量的CS钙钛矿材料提供了新的见解。 :能源可持续性;材料表征;能源材料科目:能源可持续性,材料表征,能源材料

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