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基于芳环取代酰亚胺端基的非富勒烯受体材料的合成与光伏性能
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作者 施世领 蒋寒曦 +6 位作者 涂雪杨 鲜开虎 韩德霞 李艳如 姚翔 叶龙 费竹平 《高等学校化学学报》 SCIE EI CAS CSCD 北大核心 2023年第9期209-217,共9页
端基结构对于有机太阳能电池(OSCs)中非富勒烯受体(NFAs)的光电性能具有重要影响.本文设计合成了3种新型芳环取代的酰亚胺结构的端基(IIC-Ph, IIC-PhBr和IIC-Ph2F),并将其用于制备受体-给体(受体)给体-受体(A-DA′D-A)型NFAs(BTP-IIC-Ph... 端基结构对于有机太阳能电池(OSCs)中非富勒烯受体(NFAs)的光电性能具有重要影响.本文设计合成了3种新型芳环取代的酰亚胺结构的端基(IIC-Ph, IIC-PhBr和IIC-Ph2F),并将其用于制备受体-给体(受体)给体-受体(A-DA′D-A)型NFAs(BTP-IIC-Ph, BTP-IIC-PhBr和BTP-IIC-Ph2F).紫外-可见-近红外吸收光谱对比和理论模拟结果表明,相比于IIC-Ph端基, IIC-PhBr和IIC-Ph2F端基具有更强的吸电子能力,增强了NFAs的分子内电荷转移效应(ICT),促使了吸收红移.端基苯环上强吸电子的溴原子和氟原子的引入,降低了A-DA′D-A型受体的前线轨道能级.基于BTP-IIC-Ph, BTP-IIC-PhBr和BTP-IIC-Ph2F的二元电池分别获得了13.54%, 11.84%和11.58%的能量转换效率(PCEs).相比于BTP-IIC-PhBr和BTP-IIC-Ph2F,基于BTP-IIC-Ph的电池表现出更好的光伏性能,这主要归因于其较高的最低未占有轨道能级(LUMO)所导致的较高开路电压(VOC),以及更好的激子解离能力和更弱的陷阱辅助载流子复合. 展开更多
关键词 有机太阳能电池 非富勒烯受体 端基 酰亚胺
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15.3% efficiency all-small-molecule organic solar cells enabled by symmetric phenyl substitution 被引量:5
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作者 Jinzhao Qin Cunbin An +13 位作者 Jianqi Zhang Kangqiao Ma Yang Yang Tao Zhang Sunsun Li Kaihu Xian Yong Cui Yabing Tang Wei Ma Huifeng Yao Shaoqing Zhang Bowei Xu Chang He Jianhui Hou 《Science China Materials》 SCIE EI CSCD 2020年第7期1142-1150,共9页
Synergistic optimization of donor-acceptor blend morphologyis a hurdle in the path of realizing efficient non-fullerene small-molecule organic solar cells(NFSMOSCs)due to the anisotropic conjugated backbones of both d... Synergistic optimization of donor-acceptor blend morphologyis a hurdle in the path of realizing efficient non-fullerene small-molecule organic solar cells(NFSMOSCs)due to the anisotropic conjugated backbones of both donor and acceptor.Therefore,developing a facile molecular design strategy to effectively regulate the crystalline properties of photoactive materials,and thus,enable the optimization of blend morphology is of vital importance.In this study,a new donor molecule B1,comprising phenyl-substituted benzodithiophene(BDT)central unit,exhibits strong interaction with the non-fullerene acceptor BO-4 Cl in comparison with its corresponding thiophene-substituted BDT-based material,BTR.As a result,the B1 is affected and induced from an edgeon to a face-on orientation by the acceptor,while the BTR and the acceptor behave individually for the similar molecular orientation in pristine and blend films according to grazing incidence wide angle X-ray scattering results.It means the donor-acceptor blend morphology is synergistically optimized in the B1 system,and the B1:BO-4 Cl-based devices achieve an outstanding power conversion efficiency(PCE)of 15.3%,further certified to be 15.1%by the National Institute of Metrology,China.Our results demonstrate a simple and effective strategy to improve the crystalline properties of the donor molecule as well as synergistically optimize the morphology of the all-small-molecule system,leading to the high-performance NFSM-OSCs. 展开更多
关键词 organic solar cells all-small-molecule non-fullerene CRYSTALLINITY intermolecular interaction
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