Triadic Halobenzene Processing Additive Combined Advantages of Both Solvent and Solid Types for Efficient and Stable Organic Solar Cells

被引:18
作者
Park, Jaeyeong [1 ]
Jeong, Seonghun [1 ]
Sun, Zhe [1 ]
Mai, Thi Le Huyen [1 ]
Jeong, Seokhwan [1 ]
Yang, Sangjin [1 ]
Yang, Changduk [1 ,2 ]
机构
[1] Ulsan Natl Inst Sci & Technol UNIST, Perovtron Res Ctr, Low Dimens Carbon Mat Ctr, Sch Energy & Chem Engn, 50 UNIST Gil, Ulsan 44919, South Korea
[2] Ulsan Natl Inst Sci & Technol UNIST, Grad Sch Carbon Neutral, 50 UNIST Gil, Ulsan 44919, South Korea
基金
新加坡国家研究基金会;
关键词
electrostatic interaction; organic solar cell; solvent additive; stability; volatility; RECOMBINATION;
D O I
10.1002/smll.202405415
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Solvent additives with a high boiling point (BP) and low vapor pressure (VP) have formed a key handle for improving the performance of organic solar cells (OSCs). However, it is not always clear whether they remain in the active-layer film after deposition, which can negatively affect the reproducibility and stability of OSCs. In this study, an easily removable solvent additive (4-chloro-2-fluoroiodobenzene (CFIB)) with a low BP and high VP is introduced, behaving like volatile solid additives that can be completely removed during the device fabrication process. In-depth studies of CFIB addition into the D18-Cl donor and N3 acceptor validate its dominant non-covalent intermolecular interactions with N3 through effective electrostatic interactions. Such phenomena improve charge dynamics and kinetics by optimizing the morphology, leading to enhanced performance of D18-Cl:N3-based devices with a power conversion efficiency of 18.54%. The CFIB-treated device exhibits exceptional thermal stability (T80 lifetime = 120 h) at 85 degrees C compared with the CFIB-free device, because of its morphological robustness by evolving no residual CFIB in the film. The CFIB features a combination of advantages of solvent (easy application) and solid (high volatility) additives, demonstrating its great potential use in the commercial mass production of OSCs. A removable solvent additive, 4-chloro-2-fluoroiodobenzene (CFIB), is introduced for organic solar cells (OSCs). The non-covalent interaction between CFIB and active materials and CFIB-derived morphological improvement in the active layer results in improved exciton dissociation and charge-transport/collection behaviors. Consequently, CFIB-treated OSC achieves superior power conversion efficiency of 18.54% and thermal stability of 120 h for T80 lifetime at 85 degrees C. image
引用
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页数:9
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共 47 条
[1]   Competition between recombination and extraction of free charges determines the fill factor of organic solar cells [J].
Bartesaghi, Davide ;
Perez, Irene del Carmen ;
Kniepert, Juliane ;
Roland, Steffen ;
Turbiez, Mathieu ;
Neher, Dieter ;
Koster, L. Jan Anton .
NATURE COMMUNICATIONS, 2015, 6
[2]   Role of simultaneous thermodynamic and kinetic variables in optimizing blade-coated organic solar cells [J].
Cho, Yongjoon ;
Lee, Byoungkyu ;
Jung, Sungwoo ;
Jeong, Seonghun ;
Park, Jeewon ;
Park, Geunhyung ;
Yang, Sangjin ;
Yang, Changduk .
ENERGY & ENVIRONMENTAL SCIENCE, 2023, 16 (12) :6035-6045
[3]   Revealing Hidden UV Instabilities in Organic Solar Cells by Correlating Device and Material Stability [J].
Classen, Andrej ;
Heumueller, Thomas ;
Wabra, Isabell ;
Gerner, Johannes ;
He, Yakun ;
Einsiedler, Lukas ;
Li, Ning ;
Matt, Gebhard J. ;
Osvet, Andres ;
Du, Xiaoyan ;
Hirsch, Andreas ;
Brabec, Christoph J. .
ADVANCED ENERGY MATERIALS, 2019, 9 (39)
[4]   Removal of Residual Diiodooctane Improves Photostability of High-Performance Organic Solar Cell Polymers [J].
de Villers, Bertrand J. Tremolet ;
O'Hara, Kathryn A. ;
Ostrowski, David P. ;
Biddle, Perry H. ;
Shaheen, Sean E. ;
Chabinyc, Michael L. ;
Olson, Dana C. ;
Kopidakis, Nikos .
CHEMISTRY OF MATERIALS, 2016, 28 (03) :876-884
[5]   Effects of the diphenyl ether additive in halogen-free processed non-fullerene acceptor organic solar cells [J].
Di Mario, Lorenzo ;
Romero, David Garcia ;
Pieters, Meike J. ;
Eller, Fabian ;
Zhu, Chenhui ;
Bongiovanni, Giovanni ;
Herzig, Eva M. ;
Mura, Andrea ;
Loi, Maria A. .
JOURNAL OF MATERIALS CHEMISTRY A, 2023, 11 (05) :2419-2430
[6]   Synergistic effect of solvent and solid additives on morphology optimization for high-performance organic solar cells [J].
Fan, Chenling ;
Yang, Hang ;
Zhang, Qing ;
Bao, Sunan ;
Fan, Hongyu ;
Zhu, Xianming ;
Cui, Chaohua ;
Li, Yongfang .
SCIENCE CHINA-CHEMISTRY, 2021, 64 (11) :2017-2024
[7]   Halogenated thiophenes serve as solvent additives in mediating morphology and achieving efficient organic solar cells [J].
Guo, Lingzhi ;
Li, Qingduan ;
Ren, Jiaxuan ;
Xu, Yuanjie ;
Zhang, Jiabin ;
Zhang, Kai ;
Cai, Yuepeng ;
Liu, Shengjian ;
Huang, Fei .
ENERGY & ENVIRONMENTAL SCIENCE, 2022, 15 (12) :5137-5148
[8]   1-Chloronaphthalene-Induced Donor/Acceptor Vertical Distribution and Carrier Dynamics Changes in Nonfullerene Organic Solar Cells and the Governed Mechanism [J].
He, Xinjun ;
Chan, Christopher C. S. ;
Kim, Jinwook ;
Liu, Heng ;
Su, Chun-Jen ;
Jeng, U-Ser ;
Su, Haibin ;
Lu, Xinhui ;
Wong, Kam Sing ;
Choy, Wallace C. H. .
SMALL METHODS, 2022, 6 (03)
[9]   Revealing Donor-Acceptor Interaction on the Printed Active Layer Morphology and the Formation Kinetics for Nonfullerene Organic Solar Cells at Ambient Conditions [J].
Jiang, Xinyu ;
Chotard, Pauline ;
Luo, Kexun ;
Eckmann, Felix ;
Tu, Suo ;
Reus, Manuel A. ;
Yin, Shanshan ;
Reitenbach, Julija ;
Weindl, Christian L. ;
Schwartzkopf, Matthias ;
Roth, Stephan, V ;
Mueller-Buschbaum, Peter .
ADVANCED ENERGY MATERIALS, 2022, 12 (14)
[10]   1,8,9-Trihydroxyanthracene as a Green Solid Additive for Operational Stability in Organic Solar Cells [J].
Kang, Hui ;
Jing, Yanan ;
Zhang, Yingyu ;
Li, Yanxun ;
Zhang, Hong ;
Zhou, Huiqiong ;
Zhang, Yuan .
SOLAR RRL, 2023, 7 (05)