High-Performance Large-Area Organic Solar Cells Enabled by Sequential Bilayer Processing via Nonhalogenated Solvents

被引:172
作者
Dong, Sheng [1 ]
Zhang, Kai [1 ]
Xie, Boming [1 ]
Xiao, Jingyang [1 ]
Yip, Hin-Lap [1 ]
Yan, He [2 ,3 ]
Huang, Fei [1 ]
Cao, Yong [1 ]
机构
[1] South China Univ Technol, State Key Lab Luminescent Mat & Devices, Inst Polymer Optoelect Mat & Devices, Guangzhou 510640, Guangdong, Peoples R China
[2] Hong Kong Univ Sci & Technol, Chinese Natl Engn Res Ctr Tissue Restorat & Recon, Dept Chem, Kowloon, Clear Water Bay, Hong Kong, Peoples R China
[3] Hong Kong Univ Sci & Technol, Chinese Natl Engn Res Ctr Tissue Restorat & Recon, Hong Kong Branch, Kowloon, Clear Water Bay, Hong Kong, Peoples R China
关键词
blade-coating; green solvents; highly efficient; large area; sequential deposition; HIGH-EFFICIENCY; POLYMER; HETEROJUNCTION; MORPHOLOGY; OPTIMIZATION; ACCEPTOR; DEVICE;
D O I
10.1002/aenm.201802832
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
While the performance of laboratory-scale organic solar cells (OSCs) continues to grow over 13%, the development of high-efficiency large area OSCs still lags. One big challenge is that the formation of bulk heterojunction morphology is an extremely complicated process and the formed morphology is also a highly delicate balance involving many parameters such as domain size, purity, miscibility, etc. The morphology control becomes much more challenging when the device area is scaled up. In this work, a highly efficient (12.9%) nonfullerene organic solar cell processed using a sequential bilayer deposition method from nonhalogenated solvents, is reported. Using this bilayer processing method, the organic solar cells can be scaled up to a larger area (1 cm(2)) while maintaining a high performance of 11.4% using doctor-blade-coating technique. Moreover, as the acceptor is hidden behind the polymer donor, the possibility of degradation by sunlight is lessened. Thus, improved photostability is observed in the bilayer structure device when compared with the bulk heterojunction device. This method offers a truly compatible processing technique for printing large-area OSC modules.
引用
收藏
页数:7
相关论文
共 41 条
[21]   A Wide Band Gap Polymer with a Deep Highest Occupied Molecular Orbital Level Enables 14.2% Efficiency in Polymer Solar Cells [J].
Li, Sunsun ;
Ye, Long ;
Zhao, Wenchao ;
Yan, Hongping ;
Yang, Bei ;
Liu, Delong ;
Li, Wanning ;
Ade, Harald ;
Hou, Jianhui .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2018, 140 (23) :7159-7167
[22]   Morphological investigation of P3HT/PCBM heterojunction and its effects on the performance of bilayer organic solar cells [J].
Lin, Xie ;
Seok, Jeesoo ;
Yoon, Soyeon ;
Kim, Taehee ;
Kim, BongSoo ;
Kim, Kyungkon .
SYNTHETIC METALS, 2014, 196 :145-150
[23]   Efficient Polymer Solar Cells Based on a Low Bandgap Semi-crystalline DPP Polymer-PCBM Blends [J].
Liu, Feng ;
Gu, Yu ;
Wang, Cheng ;
Zhao, Wei ;
Chen, Dian ;
Briseno, Alejandro L. ;
Russell, Thomas P. .
ADVANCED MATERIALS, 2012, 24 (29) :3947-3951
[24]   Sequential Deposition: Optimization of Solvent Swelling for High-Performance Polymer Solar Cells [J].
Liu, Yao ;
Liu, Feng ;
Wang, Hsin-Wei ;
Nordlund, Dennis ;
Sun, Zhiwei ;
Ferdous, Sunzida ;
Russell, Thomas P. .
ACS APPLIED MATERIALS & INTERFACES, 2015, 7 (01) :653-661
[25]   Aggregation and morphology control enables multiple cases of high-efficiency polymer solar cells [J].
Liu, Yuhang ;
Zhao, Jingbo ;
Li, Zhengke ;
Mu, Cheng ;
Ma, Wei ;
Hu, Huawei ;
Jiang, Kui ;
Lin, Haoran ;
Ade, Harald ;
Yan, He .
NATURE COMMUNICATIONS, 2014, 5
[26]   Charge transport and photocurrent generation in poly (3-hexylthiophene): Methanofullerene bulk-heterojunction solar cells [J].
Mihailetchi, VD ;
Xie, HX ;
de Boer, B ;
Koster, LJA ;
Blom, PWM .
ADVANCED FUNCTIONAL MATERIALS, 2006, 16 (05) :699-708
[27]   Efficiency enhancement in low-bandgap polymer solar cells by processing with alkane dithiols [J].
Peet, J. ;
Kim, J. Y. ;
Coates, N. E. ;
Ma, W. L. ;
Moses, D. ;
Heeger, A. J. ;
Bazan, G. C. .
NATURE MATERIALS, 2007, 6 (07) :497-500
[28]   Influence of Blend Ratio and Processing Additive on Free Carrier Yield and Mobility in PTB7:PC71BM Photovoltaic Solar Cells [J].
Pranculis, Vytenis ;
Ruseckas, Arvydas ;
Vithanage, Dimali A. ;
Hedley, Gordon J. ;
Samuel, Ifor D. W. ;
Gulbinas, Vidmantas .
JOURNAL OF PHYSICAL CHEMISTRY C, 2016, 120 (18) :9588-9594
[29]   Morphology changes upon scaling a high-efficiency, solution-processed solar cell [J].
Ro, Hyun Wook ;
Downing, Jonathan M. ;
Engmann, Sebastian ;
Herzing, Andrew A. ;
DeLongchamp, Dean M. ;
Richter, Lee J. ;
Mukherjee, Subhrangsu ;
Ade, Harald ;
Abdelsamie, Maged ;
Jagadamma, Lethy K. ;
Amassian, Aram ;
Liu, Yuhang ;
Yan, He .
ENERGY & ENVIRONMENTAL SCIENCE, 2016, 9 (09) :2835-2846
[30]   n-Type Water/Alcohol-Soluble Naphthalene Diimide-Based Conjugated Polymers for High-Performance Polymer Solar Cells [J].
Wu, Zhihong ;
Sun, Chen ;
Dong, Sheng ;
Jiang, Xiao-Fang ;
Wu, Siping ;
Wu, Hongbin ;
Yip, Hin-Lap ;
Huang, Fei ;
Cao, Yong .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2016, 138 (06) :2004-2013