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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Degradation of the Formamidinium Cation and the Quantification of the Formamidinium-Methylammonium Ratio in Lead Iodide Hybrid Perovskites by Nuclear Magnetic Resonance Spectroscopy
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Degradation of the Formamidinium Cation and the Quantification of the Formamidinium-Methylammonium Ratio in Lead Iodide Hybrid Perovskites by Nuclear Magnetic Resonance Spectroscopy

机译:核磁共振光谱法通过核磁共振筛选铅碘化物杂交钙锌矿中甲脒阳离子的降解及甲状腺素 - 甲基铵比的定量

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摘要

The highest efficiency in perovskite solar cells is currently achieved with mixed-cation hybrid perovskites. The ratio in which the cations are present in the perovskite structure has an important effect on the optical properties and the stability of these materials. At present, the formamidinium cation is an integral part of many of the highest efficiency perovskite systems. In this work, we introduce a nuclear magnetic resonance (NMR) spectroscopy protocol for the identification and differentiation of mixed perovskite phases and of a secondary phase due to formamidinium degradation. The influence of the cooling rate used in a precipitation method on the FA/MA ratio in formamidinium-methylammonium lead iodide perovskites (FA(x)MA(1-x)PbI(3)) was investigated and compared to the FA/MA ratio in thin films. In order to obtain the FA/MA ratio from fast and accessible liquid-state H-1 NMR spectra, the influence of the acidity of the solution on the line width of the resonances was elucidated. The ratio of the organic cations incorporated into the perovskite structure could be reliably quantified in the presence of the secondary phase through a combination of liquid-state H-1 NMR and solid-state C-13 NMR spectroscopic analysis.
机译:用混合阳离子杂交钙锌矿目前实现了钙钛矿太阳能电池的最高效率。在钙钛矿结构中存在阳离子的比率对光学性质和这些材料的稳定性具有重要作用。目前,甲脒阳离子是许多最高效率钙钛矿系统的一部分。在这项工作中,我们引入核磁共振(NMR)光谱方案,用于鉴定和分化混合钙钛矿相和由于甲脒降解引起的二次相。研究了在甲基甲基铅碘化物钙钛矿(Fa(x)ma(1-x)PbI(3))中的Fa / mA比中的沉淀方法对沉淀法的影响,并与FA / MA比进行了比较在薄膜中。为了从快速和可接近的液态H-1 NMR光谱获得FA / MA比,阐明了溶液对谐振线宽的酸度对谐振线宽的影响。掺入钙钛矿结构中的有机阳离子的比例可以通过液态H-1 NMR和固态C-13 NMR光谱分析的组合在二次相存在下可靠地定量。

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