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A Near‐Infrared Photoactive Morphology Modifier Leads to Significant Current Improvement and Energy Loss Mitigation for Ternary Organic Solar Cells

机译:近红外光敏形态改性剂可显着改善三元有机太阳能电池的电流,并减少能量损失

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Herein, efficient organic solar cells (OSCs) are realized with the ternary blend of a medium band gap donor (poly[(2,6‐(4,8‐bis(5‐(2‐ethylhexyl)thiophen‐2‐yl)‐benzo[1,2‐b:4,5‐b′]dithiophene))‐alt‐(5,5‐(1′,3′‐di‐2‐thienyl‐5′,7′‐bis(2‐ethylhexyl)benzo[1′,2′‐c:4′,5′‐c′]dithiophene‐4,8‐dione)] (PBDB‐T)) with a low band gap acceptor (2,2′‐((2Z,2′Z)‐(((2,5‐difluoro‐1,4‐phenylene)bis(4,4‐bis(2‐ethylhexyl)‐4H‐cyclopenta[2,1‐b:3,4‐b′]dithiophene‐6,2‐diyl))bis(methanylylidene))bis(5,6‐difluoro‐3‐oxo‐2,3‐dihydro‐1H‐indene‐2,1‐diylidene))dimalononitrile (HF‐PCIC)) and a near‐infrared acceptor (2,2′‐((2Z,2′Z)‐(((4,4,9,9‐tetrakis(4‐hexylphenyl)‐4,9‐dihydro‐s‐indaceno[1,2‐b:5,6‐b′]dithiophene‐2,7‐diyl)bis(4‐((2‐ethylhexyl)oxy)thiophene‐5,2‐diyl))bis(methanylylidene))bis(5,6‐difluoro‐3‐oxo‐2,3‐dihydro‐1H‐indene‐2,1‐diylidene))dimalononitrile (IEICO‐4F)). It is shown that the introduction of IEICO‐4F third component into PBDB‐T:HF‐PCIC blend increases the short‐circuit current density ( J sc ) of the ternary OSC to 23.46 mA cm ?2 , with a 44% increment over those of binary devices. The significant current improvement originates from the broadened absorption range and the active layer morphology optimization through the introduction of IEICO‐4F component. Furthermore, the energy loss of the ternary cells (0.59 eV) is much decreased over that of the binary cells (0.80 eV) due to the reduction of both radiative recombination from the absorption below the band gap and nonradiative recombination upon the addition of IEICO‐4F. Therefore, the power conversion efficiency increases dramatically from 8.82% for the binary cells to 11.20% for the ternary cells. This work provides good examples for simultaneously achieving both significant current enhancement and energy loss mitigation in OSCs, which would lead to the further construction of highly efficient ternary OSCs.
机译:在此,通过中带隙供体的三元共混物(聚[(2,6-(4,8-双(5-(2-乙基己基)噻吩-2-基)-苯并[1,2-b:4,5-b']二噻吩))-alt-(5,5-(1',3'-di-2-噻吩基-5',7'-双(2-乙基己基) )具有低带隙受体(2,2'-((2Z)的苯并[1',2'-c:4',5'-c']二噻吩-4,8-​​二酮)](PBDB-T))) ,2′Z)‐((((2,5‐difluoro‐1,4‐phenylene)bis(4,4‐bis(2‐ethylhexyl)‐4H‐cyclopenta [2,1‐b:3,4‐b′ ]二噻吩-6,2-二甲苯基)双(亚甲叉基))双(5,6-二氟-3-氧代-2,3-二氢-1H-茚-2,1-二亚甲基))二甲基腈(HF-PCIC) )和近红外受体(2,2'-((2Z,2'Z)-((((4,4,9,9-四(4-己基苯基)-4,9-dihydro-s-indaceno [ 1,2-b:5,6-b'] dithiophene-2,7-diyl)bis(4-(((2-乙基己基)氧基)噻吩-5,2-diyl))bis(甲炔基))bis(5 ,6-二氟-3-氧代-2-,3-二氢-1H-茚-2,1-二亚烷基))二甲基腈(IEICO-4F))表明将IEICO-4F第三组分引入PBDB-T :HF-PCIC混合物增加了t的短路电流密度(J sc) OSC到23.46 mA cm?2,比二进制设备的OSC增长44%。通过引入IEICO-4F组件,宽泛的吸收范围和活性层形态的优化,极大地改善了电流。此外,三元细胞的能量损失(0.59 eV)比二元细胞的能量损失(0.80 eV)大大降低,这是由于在带隙以下吸收引起的辐射重组减少以及在添加IEICO-后非辐射重组4楼因此,功率转换效率从二元电池的8.82%急剧增加到三元电池的11.20%。这项工作为在OSC中同时实现显着的电流增强和能量损失减轻提供了很好的例子,这将导致进一步构建高效的三元OSC。

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