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
  • [31] Operating Temperature of Nonfullerene Acceptor-Based Bulk Heterojunction Organic Solar Cells
    Ram, Kiran Sreedhar
    Setsoafia, Daniel Dodzi Yao
    Mehdizadeh-Rad, Hooman
    Ompong, David
    Elumalai, Naveen Kumar
    Singh, Jai
    PHYSICA STATUS SOLIDI A-APPLICATIONS AND MATERIALS SCIENCE, 2021, 218 (19):
  • [32] High-efficiency organic solar cells based on a small-molecule donor and a low-bandgap polymer acceptor with strong absorption<
    Yang, Yankang
    Qiu, Beibei
    Chen, Shanshan
    Zhou, Qiuju
    Peng, Ying
    Zhang, Zhi-Guo
    Yao, Jia
    Luo, Zhenghui
    Chen, Xiaofeng
    Xue, Lingwei
    Feng, Liuliu
    Yang, Changduk
    Li, Yongfang
    JOURNAL OF MATERIALS CHEMISTRY A, 2018, 6 (20) : 9613 - 9622
  • [33] Enhanced device performance of polymer solar cells by planarization of quinoxaline derivative in a low-bandgap polymer
    Lee, Yoonkyoo
    Nam, Young Min
    Jo, Won Ho
    JOURNAL OF MATERIALS CHEMISTRY, 2011, 21 (24) : 8583 - 8590
  • [34] Intrinsic efficiency limits in low-bandgap non-fullerene acceptor organic solar cells
    Safakath Karuthedath
    Julien Gorenflot
    Yuliar Firdaus
    Neha Chaturvedi
    Catherine S. P. De Castro
    George T. Harrison
    Jafar I. Khan
    Anastasia Markina
    Ahmed H. Balawi
    Top Archie Dela Peña
    Wenlan Liu
    Ru-Ze Liang
    Anirudh Sharma
    Sri H. K. Paleti
    Weimin Zhang
    Yuanbao Lin
    Erkki Alarousu
    Sergei Lopatin
    Dalaver H. Anjum
    Pierre M. Beaujuge
    Stefaan De Wolf
    Iain McCulloch
    Thomas D. Anthopoulos
    Derya Baran
    Denis Andrienko
    Frédéric Laquai
    Nature Materials, 2021, 20 : 378 - 384
  • [35] Intrinsic Advantage of Fused-Ring Nonfullerene Acceptor-Based Organic Solar Cells to Reduce Voltage Loss
    Saito, Toshiharu
    Natsuda, Shin-ichiro
    Shirouchi, Rei
    Imakita, Kenta
    Kohzuki, Kazuki
    Tamai, Yasunari
    PHYSICA STATUS SOLIDI A-APPLICATIONS AND MATERIALS SCIENCE, 2023, 220 (24):
  • [36] Low-bandgap Sn–Pb perovskite solar cells
    Rui He
    Chuantian Zuo
    Shengqiang Ren
    Dewei Zhao
    Liming Ding
    Journal of Semiconductors, 2021, 42 (06) : 8 - 11
  • [37] Low-bandgap Sn–Pb perovskite solar cells
    Rui He
    Chuantian Zuo
    Shengqiang Ren
    Dewei Zhao
    Liming Ding
    Journal of Semiconductors, 2021, (06) : 8 - 11
  • [38] Impact of Different Thermal Annealing Sequences on Nonfullerene Acceptor-Based Organic Solar Cells
    Aldosari, Haya
    Jurado, Jose
    Alkhezaim, Khawla
    Alam, Shahidul
    Laquai, Frederic
    ACS APPLIED ENERGY MATERIALS, 2024, 7 (16): : 7055 - 7063
  • [39] Ternary Blend Polymer Solar Cells Based on Wide-bandgap Polymer PDCBT and Low-bandgap Polymer PTB7-Th
    Kim, Hyung Do
    Shimizu, Ryosuke
    Ohkita, Hideo
    CHEMISTRY LETTERS, 2018, 47 (08) : 1059 - 1062
  • [40] Wide-bandgap, low-bandgap, and tandem perovskite solar cells
    Song, Zhaoning
    Chen, Cong
    Li, Chongwen
    Awni, Rasha A.
    Zhao, Dewei
    Yan, Yanfa
    SEMICONDUCTOR SCIENCE AND TECHNOLOGY, 2019, 34 (09)