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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Hole transporting materials based on benzodithiophene and dithienopyrrole cores for efficient perovskite solar cells
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Hole transporting materials based on benzodithiophene and dithienopyrrole cores for efficient perovskite solar cells

机译:基于苯二碳尼噻吩和二噻唑芯的空穴传输材料,用于高效钙钛矿太阳能电池

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The development of highly efficient hole transporting materials (HTMs) for perovskite solar cells (PSCs) is still one of the most thrilling research subjects in the development of this emerging photovoltaic technology. Inner ring engineering of the aromatic core of new HTMs - consisting of three fused rings endowed with four triarylamine units - reveals major performance effects over the fabricated devices. In particular, substitution of the central pyrrole ring in dithienopyrrole (DTP) by a benzene ring -benzodithiophene (BDT) - allows enhancing the power conversion efficiency from 15.6% to 18.1%, in devices employing mixed-perovskite (FAPbI(3))(0.85)(MAPbBr(3))(0.15) (MA: CH3NH3+, FA: NH=CHNH3+) under 1 sun illumination. In comparison, 2,2',7,7'-tetrakis(N, N-di-p-methoxyphenylamine)-9,9'-spirobifluorene (spiro-OMeTAD) yielded a power conversion efficiency of 17.7%. The novel HTM molecules show an efficient quenching of the perovskite photoluminescence, indicating an efficient charge transfer from the active layer to the HTM, along with a good conductivity (comparable to that of the spiro-OMeTAD reference). Density functional theory (DFT) calculations allowed rationalizing the electrochemical and optical properties and predicting a reorganization energy (lambda) for the best performing BDT-based HTM (0.101 eV) significantly lower than that computed for the benchmark spiro-OMeTAD (0.139 eV).
机译:用于钙钛矿太阳能电池(PSC)高效孔输送材料(HTMS)的开发仍然是该出现的光伏技术开发中最令人惊叹的研究科目之一。新HTM的芳香核心内圈工程 - 由具有四个三罗拉塞单位的三个融合戒指组成 - 揭示了对制造设备的主要性能影响。特别地,通过苯环苄丙酮(BDT)中的中央吡咯环替代二苯甲酸吡咯(DTP) - 允许在采用混合钙钛矿(Fapbi(3))的装置中从15.6%到18.1%提高功率转换效率。(Fapbi(3))( 0.85)(MAPBBR(3))(0.15)(MA:CH3NH3 +,FA:NH = CHNH3 +)下降1次太阳照明。相比之下,2,2',7,7'-四(N,N-DI-P-甲氧基甲酰胺)-9,9'-螺二氟(螺醚)产生功率转化效率为17.7%。新型HTM分子显示出钙钛矿光致发光的有效猝灭,表明从活性层到HTM的有效电荷转移,以及良好的导电性(与螺欧比达参考的相当相当)。密度函数理论(DFT)计算允许使电化学和光学性质合理化,并预测最佳性能的基于BDT的HTM(0.101eV)的重组能量(Lambda)明显低于基准螺欧比达(0.139eV)。

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