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Efficient chemical structure and device engineering for achieving difluorinated 2,2 0-bithiophene- based small molecular organic solar cells with 9.0% efficiency

机译:高效的化学结构和装置工程,实现效率为9.0%的基于二氟化二甲磺酸的小分子有机太阳能电池

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摘要

Linear small molecules have been proved to be promising donor materials for high performance small molecular solar cells (SMSCs). In this paper, a series of narrow-band gap, -conjugated small molecules (SMs) with a D(A-Ar)(2) linear framework, denoted as FBT(PyDPP-T)(2), FBT(IID-T)(2) and FBT(TDPP-T)(2), based on fluorinated 2,2-bithiophene (FBT) as an electron-donating (D) central core, pyridine-flanked diketopyrrolopyrrole (PyDPP), isoindigo (IID) or thiophene-flanked diketopyrrolopyrrole (TDPP) as electron-accepting (A) units, and 2-octylthiophene (Ar) units as end-capping units, have been designed and synthesized for application as donor materials in solution-processed SM organic solar cells (OSCs). The impacts of different acceptor units and fluorinated central cores on bulk properties, such as the optoelectronic properties, carrier mobility, the HOMO/LUMO energy level, and the morphologies of blend films, as well as optimization on device performance via appropriate solvent vapor annealing (SVA) are systematically investigated. The as-cast devices based on FBT(PyDPP-T)(2), FBT(IID-T)(2) and FBT(TDPP-T)(2) exhibit PCEs of 5.04%, 5.68% and 6.86%, respectively. Encouragingly, after a SVA treatment with carbon disulfide (CS2) for 20 s, an impressively improved power conversion efficiency (PCE) from 6.86% to 9.00% with an increase of 35% was obtained in the FBT(TDPP-T)(2)/PC71BM (w/w, 1:1) based cells due to an enhanced short circuit current density (J(sc)) of 16.14 mA cm(-2) and fill factor (FF) of 73.52%, which is among the highest reported for D(A-Ar)(2)-type SM-based solar cells with a PCE up to 9.0% so far. Our research results reported here clearly demonstrate that highly efficient SM-OSCs can be obtained via rational design of their molecular structure and optimization of the phase-separated morphology through an appropriate solvent-vapor annealing process.
机译:线性小分子已被证明是有前途的供体材料的高性能的小分子太阳能电池(的SMSC)。在本文中,一个系列的窄带隙,缀合的小分子(SMS)与d(A-AR)(2)线性框架,表示为FBT(PyDPP-T)(2),FBT(IID-T )(2)和FBT(TDPP-T)(2),基于氟化2,2-二噻吩(FBT)作为电子给体(d)中央纤芯,吡啶侧翼二酮吡咯并吡咯(PyDPP),isoindigo(IID)或噻吩侧翼二酮吡咯并吡咯(TDPP)作为电子接受性(A)单元和2-辛基噻吩(Ar)的单元作为封端单元,已经被设计和用于应用程序作为供体材料在溶液处理的SM有机太阳能电池合成(OSC中)。不同受体单元的影响和氟化上整体性质的中心核,如光电特性,载流子迁移的HOMO / LUMO能级,和共混物薄膜的形态,以及对经由适当的溶剂蒸汽退火装置的性能优化( SVA)进行了系统的研究。基于FBT(PyDPP-T)(2),FBT(IID-T)(2)和FBT(TDPP-T)的分别5.04%,5.68%和6.86%,(2)表现出的PCE铸态器件。令人鼓舞的是,与二硫化碳(CS 2)20秒,一个令人印象深刻改进的功率转换效率(PCE)一个SVA治疗从6.86%至9.00%,增长35%后的FBT(TDPP-T)中的溶液(2)得到/ PC 71 BM(w / w的,1:1)基于细胞由于增强的短路电流密度的16.14毫安厘米(j(SC))(-2)和填充因子的73.52%(FF),这是最高的中报告的d(-氩A)(2)型SM-基于太阳能电池的PCE达到9.0%为止。我们的研究结果报导在这里清楚地表明,高效SM-的OSC可以通过它们的分子结构和相分离的形态的优化设计合理通过适当的溶剂蒸气退火工艺来获得。

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    Xiangtan Univ Key Lab Environm Friendly Chem &

    Applicat Minist Educ Coll Chem Xiangtan 411105 Peoples R China;

    Xiangtan Univ Key Lab Environm Friendly Chem &

    Applicat Minist Educ Coll Chem Xiangtan 411105 Peoples R China;

    Sichuan Univ Coll Chem Key Lab Green Chem &

    Technol State Key Lab Polymer Mat Engn Minist Educ Chengdu 610065 Sichuan Peoples R China;

    Xiangtan Univ Key Lab Environm Friendly Chem &

    Applicat Minist Educ Coll Chem Xiangtan 411105 Peoples R China;

    Xiangtan Univ Key Lab Environm Friendly Chem &

    Applicat Minist Educ Coll Chem Xiangtan 411105 Peoples R China;

    Xi An Jiao Tong Univ Sch Med Dept Biochem &

    Mol Biol Xian 710061 Shaanxi Peoples R China;

    Changzhou Univ Jiangsu Engn Lab Light Elect Heat Energy Converti Jiangsu Collaborat Innovat Ctr Photovolta Sci &

    E Natl Expt Demonstrat Ctr Mat Sci &

    Engn Sch Mat S Changzhou 213164 Peoples R China;

    Sichuan Univ Coll Chem Key Lab Green Chem &

    Technol State Key Lab Polymer Mat Engn Minist Educ Chengdu 610065 Sichuan Peoples R China;

    Changzhou Univ Jiangsu Engn Lab Light Elect Heat Energy Converti Jiangsu Collaborat Innovat Ctr Photovolta Sci &

    E Natl Expt Demonstrat Ctr Mat Sci &

    Engn Sch Mat S Changzhou 213164 Peoples R China;

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  • 中图分类 工程材料学;
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