首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >A bacteriochlorin-diketopyrrolopyrrole triad as a donor for solution-processed bulk heterojunction organic solar cells
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A bacteriochlorin-diketopyrrolopyrrole triad as a donor for solution-processed bulk heterojunction organic solar cells

机译:一种菌种-Diketopyropyrolole三合会作为溶液加工散装异质结有机太阳能电池的供体

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摘要

We have designed an A-pi-D-pi-A small-molecule triad consisting of a bacteriochlorin (BC) donor central core linked with two diketopyrrolopyrrole (DPP) acceptors via ethynyl bridges (BC-DPP-1). BC-DPP-1 has a narrow optical bandgap of 1.38 eV with highest occupied molecular orbital and lowest unoccupied molecular orbital energy levels of -4.93 eV and -3.40 eV, respectively, and it was used as an electron donor along with [6,6]-phenyl-C-71-butyric acid methyl ester (PC71BM) as an acceptor for solution-processed small-molecule organic solar cells. After optimizing the weight ratio between BC-DPP-1 and PC71BM and pyridine as a solvent additive and subsequent solvent vapor annealing using THF, an organic solar cell based on the optimized BC-DPP-1:PC71BM showed an overall power conversion efficiency of 7.48%. Since BC-DPP-1 shows a weak absorption band in the 650-750 nm wavelength region, we used a second small molecule having strong absorption in this spectral region and prepared the ternary active layer BC-DPP-1 : SM : PC71BM, varying the weight ratio between the two donors and keeping the amount of PC71BM constant. The ternary active layer BC-DPP-1 (70% w/w):SM (30% w/w):PC71BM showed the best photovoltaic performance. After the optimization of the ternary active layer (i.e., the solvent additive and subsequent solvent vapor additive), the organic solar cell showed overall power conversion efficiency of 9.88%. The improved power conversion efficiency resulted from the enhancement of J(sc), V-oc and FF as compared to the binary counterpart. Since BC is an analog of porphyrins and chlorophylls, these results demonstrate that benefiting from the narrow band gap of BC-DPP-1 (i.e., organic solar cells with light harvesting in the NIR region of the solar spectrum) can be a real improvement. Moreover, the low energy loss (0.48 eV) as compared to the binary counterpart (0.58 eV) also confirms the suppressed recombination in the ternary organic solar cells.
机译:我们设计了一种A-PI-D-PI-A小分子三合会,其由通过乙炔基桥(BC-DPP-1)与两种二酮吡咯(DPP)受体连接的菌丝氯素(BC)供体中央核心。 BC-DPP-1具有1.38eV的窄光学带隙,分别具有最高的分子轨道和最低的未占用的分子轨道能量-4.93eV和-3.40eV,并用作电子供体以及[6,6 ] -phenyl-C-71-丁酸甲酯(PC71BM)作为溶液加工的小分子有机太阳能电池的受体。在优化BC-DPP-1和PC71BM与吡啶作为溶剂添加剂之间的重量比和随后使用THF的溶剂蒸汽退火后,基于优化的BC-DPP-1:PC71BM的有机太阳能电池显示出7.48的总电力转换效率%。由于BC-DPP-1显示了650-750nm波长区域中的弱吸收带,因此我们使用了在该光谱区域中具有很强的吸收的第二小分子,并制备了三元有源层BC-DPP-1:SM:PC71BM,不同两种供体之间的重量比并保持PC71BM恒定的量。三元有源层BC-DPP-1(70%w / w):sm(30%w / w):PC71BM显示出最佳的光伏性能。优化三元活性层(即,溶剂添加剂和随后的溶剂蒸气添加剂)后,有机太阳能电池显示总功率转化效率为9.88%。与二进制对应物相比,改善的功率转换效率是由J(SC),V-OC和FF的增强。由于BC是卟啉和叶绿素的类似物,这些结果表明,来自BC-DPP-1的窄带隙(即,在太阳光谱的NIR区域中具有光收割的有机太阳能电池的有机太阳能电池的损害可能是真正的改进。此外,与二元对应物(0.58eV)相比的低能量损失(0.48eV)还证实了三元有机太阳能电池中的抑制重组。

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    Univ Bourgogne Franche Comte Univ Bourgogne Inst Chim Mol UMR 6302 CNRS 9 Ave Alain Savary BP 47870 F-21078 Dijon France;

    Univ Bourgogne Franche Comte Univ Bourgogne Inst Chim Mol UMR 6302 CNRS 9 Ave Alain Savary BP 47870 F-21078 Dijon France;

    Univ Bourgogne Franche Comte Univ Bourgogne Inst Chim Mol UMR 6302 CNRS 9 Ave Alain Savary BP 47870 F-21078 Dijon France;

    Univ Bourgogne Franche Comte Univ Bourgogne Inst Chim Mol UMR 6302 CNRS 9 Ave Alain Savary BP 47870 F-21078 Dijon France;

    Univ Bourgogne Franche Comte Univ Bourgogne Inst Chim Mol UMR 6302 CNRS 9 Ave Alain Savary BP 47870 F-21078 Dijon France;

    Univ Bourgogne Franche Comte Univ Bourgogne Inst Chim Mol UMR 6302 CNRS 9 Ave Alain Savary BP 47870 F-21078 Dijon France;

    Univ Bourgogne Franche Comte Univ Bourgogne Inst Chim Mol UMR 6302 CNRS 9 Ave Alain Savary BP 47870 F-21078 Dijon France;

    Univ Bourgogne Franche Comte Univ Bourgogne Inst Chim Mol UMR 6302 CNRS 9 Ave Alain Savary BP 47870 F-21078 Dijon France;

    Malaviya Natl Inst Informat Technol Dept Phys JNL Marg Jaipur 302017 Rajasthan India;

    LNM Inst Informat Technol Dept Phys Jaipur 302031 Rajasthan India;

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  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;
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