Liu Wenxu, Lu Hao, Xu Xiaoyun, Huang Hao, Zhang Jianqi, Tang Zheng, Bo Zhishan
Key Laboratory of Energy Conversion and Storage Materials, College of Chemistry, Beijing Normal University, Beijing 100875, P. R. China.
Center for Advanced Low-dimension Materials, State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, P. R. China.
ACS Appl Mater Interfaces. 2021 Jun 2;13(21):24765-24773. doi: 10.1021/acsami.1c03840. Epub 2021 May 18.
Achieving a high-energy charge-transfer state () and concurrently reduced energy loss is of vital importance in boosting the open-circuit voltage () of organic solar cells (OSCs), but it is difficult to realize. We report herein a novel design tactic to achieve this goal by incorporating a three-dimensional (3D) shape-persistent norbornenyl group into the terminals of acceptor-donor-acceptor-type nonfullerene acceptors (NFAs). Compared with ITIC-based OSCs, norbornenyl-fused 1,1-dicyanomethylene-3-indanone (CBIC) terminals endow -based OSCs with simultaneously higher and lower radiative and non-radiative voltage loss, hence enhancing by 90 mV. CBIC also improves the miscibility and modulates the molecular packing structures for efficient charge carrier transport and a better short-circuit current density in -based OSCs. Consequently, the power conversion efficiency is improved by 22%, compared to that of the OSC based on ITIC. Furthermore, the effectiveness of the use of CBIC as the terminals is observed using different electron-donating cores. The utilization of the 3D shape-persistent building blocks represents a breakthrough in the design strategies for terminal groups toward efficient NFA-based OSCs with high .
在提高有机太阳能电池(OSC)的开路电压( )方面,实现高能量电荷转移态( )并同时降低能量损失至关重要,但这很难实现。我们在此报告一种新颖的设计策略,通过将三维(3D)形状持久的降冰片烯基引入给体-受体-给体型非富勒烯受体(NFA)的末端来实现这一目标。与基于ITIC的OSC相比,降冰片烯基稠合的1,1-二氰基亚甲基-3-茚满酮(CBIC)末端赋予基于 的OSC同时更高的 以及更低的辐射和非辐射电压损失,从而使 提高了90 mV。CBIC还改善了混溶性并调节了分子堆积结构,以实现基于 的OSC中高效的电荷载流子传输和更好的短路电流密度。因此,与基于ITIC的OSC相比,功率转换效率提高了22%。此外,使用不同的给电子核观察到了将CBIC用作末端的有效性。利用3D形状持久的结构单元代表了针对具有高 的基于NFA的高效OSC的端基设计策略的突破。