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首页> 外文期刊>Theoretical chemistry accounts >DFT and TD-DFT calculations of the electronic structures and photophysical properties of newly designed pyrene-core arylamine derivatives as hole-transporting materials for perovskite solar cells
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DFT and TD-DFT calculations of the electronic structures and photophysical properties of newly designed pyrene-core arylamine derivatives as hole-transporting materials for perovskite solar cells

机译:新设计的芘核心芳基胺衍生物作为钙钛矿太阳能电池的空穴传输材料的电子结构和TD-DFT计算。

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The electronic structures and photophysical properties of three newly designed pyrene (PY) core arylamine derivatives as hole-transporting materials (HTMs) have been studied by DFT and TD-DFT methods. The modifications made in the arylamine wings of the well-studied and successful HTM PYC compound result in three HTMs designated as HTM1, HTM2, and HTM3. Four of the (methoxyphenyl)amine rings in PYC were replaced by (methoxyphenyl) thiophene (HTM1), (meth-oxyphenyl) furan (HTM2) and (methoxyphenyl) pyrrole (HTM3). The calculated HOMO and LUMO levels of HTMs 1-3 show proper energy matching and hole-injecting layer, indicating that the hole transports of the HTMs 1-3 compounds are very comparable with that of PYC. The matching of HOMO levels of HTM1 and HTM2 and the LUMO level of HTM3 is even better than that of PYC compound. The FMO analysis elucidated that the PY core acts as an electron withdrawal and contributes mainly to LUMO levels and the arylamine wings act as an electron-donating group and contribute mainly to HOMO levels. HTMs 1-3 show large Stokes shifts based on their absorption and emission spectra. Additionally, the hole reorganization energy is less than that of electrons. Thus, their hole mobility is better than their electron mobility. Furthermore, the ionization potentials, electron affinities, and hardness values were also calculated and compared to evaluate the performance of the newly designed HTMs. The nonlinear optical properties for the newly designed HTMs 1-3 have been investigated as they are correlated with the photoelectric conversion performance. We have also predicted the hole and electron mobility of molecules, and the calculated hole mobility values are better than the electron mobility, so it can be concluded that these materials would be competent hole transfer materials.
机译:通过DFT和TD-DFT方法研究了三种新设计的芘(PY)核心芳基胺衍生物作为空穴传输材料(HTMS)的电子结构和光物理性质。在研究良好和成功的HTM PYC化合物的芳基胺翅膀中的修饰导致三种HTM1,HTM2和HTM3表示。 PYC中的四种(甲氧基苯基)胺环被(甲氧基氧基)噻吩(HTM1),(甲氧苯基)呋喃(HTM2)和(甲氧基苯基)吡咯(HTM3)取代。计算出的HOMO和LUMO水平的HTMS 1-3显示出适当的能量匹配和空穴注入层,表明HTMS 1-3化合物的空穴传输与PYC的空穴相当。 HOMO水平的HTM1和HTM2的匹配和HTM3的LUMO水平甚至比PYC化合物更好。 FMO分析阐明了PY核心作为电子取出并主要贡献Lumo水平,并且芳胺翅膀作为电子提供的基团并主要贡献至同性全调。 HTMS 1-3基于吸收和发射光谱显示大型斯托克斯班次。另外,空穴重组能量小于电子的能量。因此,它们的空穴迁移率优于电子迁移率。此外,还计算了电离电位,电子亲和力和硬度值,以评估新设计的HTM的性能。已经研究了新设计的HTMS 1-3的非线性光学性能,因为它们与光电转换性能相关。我们还预测了分子的孔和电子迁移率,并且计算的空穴迁移率值优于电子迁移率,因此可以得出结论,这些材料是能力的孔转移材料。

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