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通过一种新型罗丹宁基受体实现的精细分子堆积,使无添加剂的小面积和大面积有机光伏器件表现出色,效率接近19%和12.20%。

Finely Tuned Molecular Packing Realized by a New Rhodanine-Based Acceptor Enabling Excellent Additive-Free Small- and Large-Area Organic Photovoltaic Devices Approaching 19 and 12.20% Efficiencies.

作者信息

Gokulnath Thavamani, Kim Jeonghyeon, Kim Hyerin, Park Jeonghyeon, Song Donghyun, Park Ho-Yeol, Kumaresan Raja, Kim Young Yong, Yoon Jinhwan, Jin Sung-Ho

机构信息

Department of Chemistry Education, Graduate Department of Chemical Materials, Institute for Plastic Information and Energy Materials, Sustainable Utilization of Photovoltaic Energy Research Center (ERC), Pusan National University, Busandaehakro 63-2, Busan 46241, Republic of Korea.

Beamline Division, Pohang Accelerator Laboratory, Pohang University of Science and Technology, Pohang 37673, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2023 Apr 19;15(15):19307-19318. doi: 10.1021/acsami.3c01121. Epub 2023 Apr 4.

Abstract

A new nonfullerene acceptor (NFA), BTA-ERh, was synthesized and integrated into a PM6:Y7:PCBM ternary system to regulate the blend film morphology for enhanced device performance. Due to BTA-ERh's good miscibility with host active blend films, an optimized film morphology was obtained with appropriate phase separation and fine-tuning of film crystallinity, which ultimately resulted in efficient exciton dissociation, charge transport, lower recombination loss, and decreased trap-state density. The resulting additive-free quaternary devices achieved a remarkable efficiency of 18.90%, with a high voltage, fill factor, and current density of 0.87 V, 76.32%, and 28.60 mA cm, respectively. By adding less of a new small molecule with high crystallinity, the favorable nanomorphology shape of blend films containing NFAs might be adjusted. Consequently, this strategy can enhance photovoltaic device performance for cutting-edge NFA-based organic solar cells (OSCs). In contrast, the additive-free OSCs exhibited good operational stability. More importantly, large-area modules with the quaternary device showed a remarkable efficiency of 12.20%, with an area as high as 55 cm (substrate size, 100 cm) in an air atmosphere D-bar coating. These results highlight the enormous research potential for a multicomponent strategy for future additive-free OSC applications.

摘要

合成了一种新型非富勒烯受体(NFA)BTA-ERh,并将其集成到PM6:Y7:PCBM三元体系中,以调节共混膜形态,提高器件性能。由于BTA-ERh与主体活性共混膜具有良好的混溶性,通过适当的相分离和对膜结晶度的微调,获得了优化的膜形态,最终实现了高效的激子解离、电荷传输、更低的复合损失和降低的陷阱态密度。所得无添加剂的四元器件实现了18.90%的显著效率,其高电压、填充因子和电流密度分别为0.87 V、76.32%和28.60 mA cm。通过添加较少的具有高结晶度的新型小分子,可以调整含NFA共混膜的良好纳米形态形状。因此,该策略可以提高基于NFA的前沿有机太阳能电池(OSC)的光伏器件性能。相比之下,无添加剂的OSC表现出良好的运行稳定性。更重要的是,采用四元器件的大面积模块在空气气氛D-bar涂层中表现出12.20%的显著效率,面积高达55 cm(基板尺寸为100 cm)。这些结果突出了多组分策略在未来无添加剂OSC应用中的巨大研究潜力。

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