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Over 16% efficiency organic photovoltaic cells enabled by a chlorinated acceptor with increased open-circuit voltages

Nature Communications · 2019 · Vol. 10(1) · pp. 2515–2515
Yong CuiHuifeng YaoJianqi ZhangTao ZhangYuming WangLing HongKaihu XianBowei XuShaoqing ZhangJing PengZhixiang WeiFeng GaoJianhui Hou

Abstract

Broadening the optical absorption of organic photovoltaic (OPV) materials by enhancing the intramolecular push-pull effect is a general and effective method to improve the power conversion efficiencies of OPV cells. However, in terms of the electron acceptors, the most common molecular design strategy of halogenation usually results in down-shifted molecular energy levels, thereby leading to decreased open-circuit voltages in the devices. Herein, we report a chlorinated non-fullerene acceptor, which exhibits an extended optical absorption and meanwhile displays a higher voltage than its fluorinated counterpart in the devices. This unexpected phenomenon can be ascribed to the reduced non-radiative energy loss (0.206 eV). Due to the simultaneously improved short-circuit current density and open-circuit voltage, a high efficiency of 16.5% is achieved. This study demonstrates that finely tuning the OPV materials to reduce the bandgap-voltage offset has great potential for boosting the efficiency.

Organic Electronics and PhotovoltaicsConducting polymers and applicationsPerovskite Materials and ApplicationsOpen-circuit voltagePhotovoltaic systemAcceptorOrganic solar cellVoltageMaterials scienceShort circuitOptoelectronicsNanotechnologyEnvironmental science

Funding

  • National Natural Science Foundation of China
  • Vetenskapsrådet
  • Energimyndigheten
  • Youth Innovation Promotion Association of the Chinese Academy of Sciences
  • National Natural Science Foundation of China-Yunnan Joint Fund
  • Youth Innovation Promotion Association
Citations
1,685
FWCI
155.66
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59
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References
Polymer solar cells
Nature Photonics · 2012 · 4,351 citations
Detailed Balance Limit of Efficiency of<i>p-n</i>Junction Solar Cells
Journal of Applied Physics · 1961 · 12,706 citations
Multiwfn: A multifunctional wavefunction analyzer
Journal of Computational Chemistry · 2011 · 40,535 citations
Molecular Optimization Enables over 13% Efficiency in Organic Solar Cells
Journal of the American Chemical Society · 2017 · 2,754 citations
Organic solar cells based on non-fullerene acceptors
Nature Materials · 2018 · 2,781 citations
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