A blade-coated highly efficient thick active layer for non-fullerene organic solar cells

被引:48
作者
Zhang, Lin [1 ,2 ]
Zhao, Heng [1 ]
Lin, Baojun [1 ]
Yuan, Jian [1 ]
Xu, Xianbin [1 ]
Wu, Jingnan [3 ]
Zhou, Ke [1 ]
Guo, Xia [3 ]
Zhang, Maojie [3 ]
Ma, Wei [1 ]
机构
[1] Xi An Jiao Tong Univ, State Key Lab Mech Behav Mat, Xian 710049, Shaanxi, Peoples R China
[2] Cent S Univ, Sch Phys & Elect, Hunan Key Lab Super Microstruct & Ultrafast Proc, Changsha 410083, Hunan, Peoples R China
[3] Soochow Univ, Coll Chem Chem Engn & Mat Sci, State & Local Joint Engn Lab Novel Funct Polymer, Lab Adv Optoelect Mat, Suzhou 215123, Peoples R China
基金
中国博士后科学基金;
关键词
DOMAIN PURITY; 13-PERCENT EFFICIENCY; MOLECULAR-ORIENTATION; POLYMER; PERFORMANCE; OPTIMIZATION; INTERFACES; MOBILITY; ENABLES; DONOR;
D O I
10.1039/c9ta09799f
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
Regulating molecular ordering and nanoscale morphology of photoactive layer is crucial to achieve high carrier mobility for fabricating thick-film organic solar cells (OSCs). Herein, molecular ordering and phase separation were finely controlled by varying the substrate temperature in blade-coated PM6:IT-4F devices. The blade-coated devices with low substrate temperature (30 degrees C) show low crystallinity of IT-4F and poor device performance. However, a high power conversion efficiency (PCE) of 13.64% was achieved for the device blade-coated at 50 degrees C in air without any other processing treatments, due to the well-ordered molecular packing along the backbone direction of IT-4F molecules. When the film thickness increased to 400 nm, an excellent PCE of 10.22% was achieved in the device blade-coated at 70 degrees C, which is higher than that of the optimal device blade-coated at 50 degrees C. This was attributed to the much improved crystallinity within the long-range ordered side-chain packing of IT-4F molecules and the newly emerged small-scale phase separation providing purer domains and continuous charge transport channels. Furthermore, large-area (90 mm(2)) devices exhibit high PCEs of 11.39% and 9.76% with a 56 mm(2) aperture at film thicknesses of 135 nm and 306 nm, respectively. In addition, the device blade-coated at 70 degrees C exhibits good storage stability. This work provides comprehensive guidance for optimizing the molecular ordering and nanoscale morphology to fabricate high-efficiency thick-film OSCs.
引用
收藏
页码:22265 / 22273
页数:9
相关论文
共 56 条
  • [1] Charge-Carrier Mobility Requirements for Bulk Heterojunction Solar Cells with High Fill Factor and External Quantum Efficiency >90%
    Bartelt, Jonathan A.
    Lam, David
    Burke, Timothy M.
    Sweetnam, Sean M.
    McGehee, Michael D.
    [J]. ADVANCED ENERGY MATERIALS, 2015, 5 (15)
  • [2] High-performance organic thin-film transistors through solution-sheared deposition of small-molecule organic semiconductors
    Becerril, Hector A.
    Roberts, Mark E.
    Liu, Zihong
    Locklin, Jason
    Bao, Zhenan
    [J]. ADVANCED MATERIALS, 2008, 20 (13) : 2588 - +
  • [3] Competition between Exceptionally Long-Range Alkyl Sidechain Ordering and Backbone Ordering in Semiconducting Polymers and Its Impact on Electronic and Optoelectronic Properties
    Carpenter, Joshua H.
    Ghasemi, Masoud
    Gann, Eliot
    Angunawela, Indunil
    Stuard, Samuel J.
    Rech, Jeromy James
    Ritchie, Earl
    O'Connor, Brendan T.
    Atkin, Joanna
    You, Wei
    DeLongchamp, Dean M.
    Ade, Harald
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2019, 29 (05)
  • [4] Influence of Blend Morphology and Energetics on Charge Separation and Recombination Dynamics in Organic Solar Cells Incorporating a Nonfullerene Acceptor
    Cha, Hyojung
    Wheeler, Scot
    Holliday, Sarah
    Dimitrov, Stoichko D.
    Wadsworth, Andrew
    Lee, Hyun Hwi
    Baran, Derya
    McCulloch, Iain
    Durrant, James R.
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2018, 28 (03)
  • [5] A Wide-Bandgap Donor Polymer for Highly Efficient Non-fullerene Organic Solar Cells with a Small Voltage Loss
    Chen, Shangshang
    Liu, Yuhang
    Zhang, Lin
    Chow, Philip C. Y.
    Wang, Zheng
    Zhang, Guangye
    Ma, Wei
    Yan, He
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2017, 139 (18) : 6298 - 6301
  • [6] Ultrafast Channel II process induced by a 3-D texture with enhanced acceptor order ranges for high-performance non-fullerene polymer solar cells
    Chen, Shanshan
    Lee, Sang Myeon
    Xu, Jianqiu
    Lee, Jungho
    Lee, Kyu Cheol
    Hou, Tianyu
    Yang, Yankang
    Jeong, Mingyu
    Lee, Byongkyu
    Cho, Yongjoon
    Jung, Sungwoo
    Oh, Jiyeon
    Zhang, Zhi-Guo
    Zhang, Chunfeng
    Xiao, Min
    Li, Yongfang
    Yang, Changduk
    [J]. ENERGY & ENVIRONMENTAL SCIENCE, 2018, 11 (09) : 2569 - 2580
  • [7] Achieving Over 15% Efficiency in Organic Photovoltaic Cells via Copolymer Design
    Cui, Yong
    Yao, Huifeng
    Hong, Ling
    Zhang, Tao
    Xu, Ye
    Xian, Kaihu
    Gao, Bowei
    Qin, Jinzhao
    Zhang, Jianqi
    Wei, Zhixiang
    Hou, Jianhui
    [J]. ADVANCED MATERIALS, 2019, 31 (14)
  • [8] Achieving over 16% efficiency for single-junction organic solar cells
    Fan, Baobing
    Zhang, Difei
    Li, Meijing
    Zhong, Wenkai
    Zeng, Zhaomiyi
    Ying, Lei
    Huang, Fei
    Cao, Yong
    [J]. SCIENCE CHINA-CHEMISTRY, 2019, 62 (06) : 746 - 752
  • [9] Synergistic effect of fluorination on both donor and acceptor materials for high performance non-fullerene polymer solar cells with 13.5% efficiency
    Fan, Qunping
    Su, Wenyan
    Wang, Yan
    Guo, Bing
    Jiang, Yufeng
    Guo, Xia
    Liu, Feng
    Russell, Thomas P.
    Zhang, Maojie
    Li, Yongfang
    [J]. SCIENCE CHINA-CHEMISTRY, 2018, 61 (05) : 531 - 537
  • [10] High-Performance As-Cast Nonfullerene Polymer Solar Cells with Thicker Active Layer and Large Area Exceeding 11% Power Conversion Efficiency
    Fan, Qunping
    Wang, Yan
    Zhang, Maojie
    Wu, Bo
    Guo, Xia
    Jiang, Yufeng
    Li, Wanbin
    Guo, Bing
    Ye, Chennan
    Su, Wenyan
    Fang, Jin
    Ou, Xuemei
    Liu, Feng
    Wei, Zhixiang
    Sum, Tze Chien
    Russell, Thomas P.
    Li, Yongfang
    [J]. ADVANCED MATERIALS, 2018, 30 (06)