Investigation of low-bandgap nonfullerene acceptor-based polymer solar cells with very low photovoltage loss

被引:5
|
作者
Zhang, Ying [1 ,2 ]
Liu, Delong [2 ]
Fong, Patrick W. K. [2 ]
Li, Gang [1 ,2 ]
机构
[1] Hong Kong Polytech Univ, Shenzhen Res Inst, Shenzhen, Guangdong, Peoples R China
[2] Hong Kong Polytech Univ, Dept Elect & Informat Engn, Hung Hom, Hong Kong, Peoples R China
关键词
polymer solar cells; low bandgap acceptor; low photovoltage loss; nonradiative recombination loss; OPEN-CIRCUIT VOLTAGE; SMALL-MOLECULE; ENERGY-LOSSES; EFFICIENCY; DESIGN; ENABLES;
D O I
10.1117/1.JPE.9.045502
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Polymer solar cells (PSCs) have seen great progress in recent years, with power conversion efficiencies of over 15%. However, PSCs suffer from larger energy losses than inorganic and perovskite solar cells, leading to lower open-circuit voltage (V-OC). The main factors that hinder the V-OC improvements include (i) relatively large nonradiative recombination losses and thus low electroluminescence quantum efficiency (EQE(EL)) in PSCs and (ii) the existence of a charge transfer state at the interface of donor and acceptor. For efficient charge separation in state-of-the-art PSCs, empirically, the driving force for exciton dissociation is considered to be at least 0.3 eV. The large driving force could lead to large voltage losses and thus hinder the PSC performance. In this study, we report using wide bandgap material PB3T as electron donor and low bandgap material IEICO-4F as electron acceptor for nonfullerene PSCs with very small driving forces, which, however, show a decent maximum external quantum efficiency (EQE) of nearly 40%. Moreover, we demonstrate a nonfullerene PSC with high EQE(EL) up to 5.1 x 10(-4), corresponding to very low nonradiative recombination losses of 0.20 eV and overall photovoltage energy losses of 0.46 to 0.52 eV, derived from different bandgap (E-gap) determination methods, which can now be comparable to those in perovskite solar cells and inorganic solar cells. (C) 2019 Society of Photo-Optical Instrumentation Engineers (SPIE).
引用
收藏
页数:13
相关论文
共 50 条
  • [21] Kinetic Monte Carlo Modeling of Low-Bandgap Polymer Solar Cells
    Albes, Tim
    Popescu, Bogdan
    Popescu, Dan
    Loch, Marius
    Arca, Francesco
    Lugli, Paolo
    2014 IEEE 40TH PHOTOVOLTAIC SPECIALIST CONFERENCE (PVSC), 2014, : 57 - 62
  • [22] Constructing a Strongly Absorbing Low-Bandgap Polymer Acceptor for High-Performance All-Polymer Solar Cells
    Zhang, Zhi-Guo
    Yang, Yankang
    Yao, Jia
    Xue, Lingwei
    Chen, Shanshan
    Li, Xiaojun
    Morrison, William
    Yang, Changduk
    Li, Yongfang
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2017, 56 (43) : 13503 - 13507
  • [23] Efficient Polymer Solar Cells Facilitated by Halogenated Substituted Wide-Bandgap Polymers and a Backbone Twisted Low-Bandgap Acceptor
    Liu, Shujuan
    Wu, Haimei
    Zhao, Baofeng
    Wang, Weiping
    Zhou, Yuchen
    Xue, Zeyu
    Ding, Kai
    Cong, Zhiyuan
    Gao, Chao
    CHEMISTRYSELECT, 2022, 7 (29):
  • [24] Photoresponsive Transistors Based on a Dual Acceptor-Containing Low-Bandgap Polymer
    Kim, Min Je
    Choi, Shinyoung
    Lee, Myeongjae
    Heo, Hyojung
    Lee, Youngu
    Cho, Jeong Ho
    Kim, BongSoo
    ACS APPLIED MATERIALS & INTERFACES, 2017, 9 (22) : 19011 - 19020
  • [25] Low-bandgap nonfullerene acceptor based on thieno[3,2-b]indole core for highly efficient binary and ternary organic solar cells
    Xie, Liang
    Zhang, Yang
    Zhuang, Wenliu
    Jeong, Sang Young
    Bian, Qingzhen
    Li, Huangfen
    Cao, Jiamin
    Liu, Wanqing
    Tan, Hua
    Woo, Han Young
    Zhang, Jian
    Wang, Ergang
    CHEMICAL ENGINEERING JOURNAL, 2022, 427
  • [26] Role of the energy offset in the charge photogeneration and voltage loss of nonfullerene acceptor-based organic solar cells
    Tamai, Yasunari
    Shirouchi, Rei
    Saito, Toshiharu
    Kohzuki, Kazuki
    Natsuda, Shin-ichiro
    JOURNAL OF MATERIALS CHEMISTRY A, 2023, 11 (33) : 17581 - 17593
  • [27] Low-bandgap D-A1-D-A2 type copolymers based on TPTI unit for efficient fullerene and nonfullerene polymer solar cells
    Chen, Long
    Yin, Pan
    Zeng, Xiaoying
    Weng, Chao
    Chen, Yueju
    Cui, Chaohua
    Shen, Ping
    POLYMER, 2019, 182
  • [28] Efficiency enhancement in low-bandgap polymer solar cells by processing with alkane dithiols
    J. Peet
    J. Y. Kim
    N. E. Coates
    W. L. Ma
    D. Moses
    A. J. Heeger
    G. C. Bazan
    Nature Materials, 2007, 6 : 497 - 500
  • [29] Functional Third Components in Nonfullerene Acceptor-Based Ternary Organic Solar Cells
    Zhang, Ying
    Li, Gang
    ACCOUNTS OF MATERIALS RESEARCH, 2020, 1 (02): : 158 - 171
  • [30] Efficiency enhancement in low-bandgap polymer solar cells by processing with alkane dithiols
    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