Optoelectronic Technology, Volume. 43, Issue 4, 327(2023)

Tandem Organic Solar Cells Based on MoO3/Au/ZnO Interconnecting Layer

Jingang HUANG and Qiao ZHENG
Author Affiliations
  • College of Physics and Information Engineering, Fuzhou University, Fuzhou350108, CHN
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    References(16)

    [1] Li Y X, Lin J D, Che X Z et al. High efficiency near-infrared and semitransparent non-fullerene acceptor organic photovoltaic cells[J]. Journal of the American Chemical Society, 139, 17114-17119(2017).

    [2] Wadsworth A, Moser M, Marks A et al. Critical review of the molecular design progress in non-fullerene electron acceptors towards commercially viable organic solar cells[J]. Chemical Society Reviews, 48, 1596-1625(2018).

    [3] Li X, Yang H, Du X. High-performance layer-by-layer organic solar cells enabled by non-Halogenated solvent with 17.89% efficiency[J]. Chemical Engineering Journal, 139496, 2-8(2023).

    [4] Liu Q, Jiang Y, Jin K et al. 18% Efficiency organic solar cells[J]. Science Bulletin, 65, 272-275(2020).

    [5] Cui Y, Xu Y, Yao H et al. Single-junction organic photovoltaic cell with 19% efficiency[J]. Adv. Mater, 33, 2102420(2021).

    [6] He C L, Shen Q, Gao Y et al. Manipulating the D:A interfacial energetics and intermolecular packing for 19.2% efficiency organic photovoltaics[J]. Energy & Environmental Science, 15, 2537-2544(2022).

    [7] Zhu M, Cuib T, Varahramyan K. Organic tandem solar cells: A review[J]. Energy & Environmental Science, 2, 347-363(2009).

    [8] Ameri T, Li N, Brabec C J. Highly efficient organic tandem solar cells: A follow up review[J]. Energy & Environmental Science, 6, 2390-2413(2013).

    [9] Ullah F, Chen C C, Choy W C H. Recent developments in organic tandem solar cells toward high efficiency[J]. Advanced Energy and Sustainability Research, 2, 2000050(2021).

    [10] Xu X, Li Y, Peng Q. Recent advances toward highly efficient tandem organic solar cells[J]. Small Structures, 1, 202000016(2020).

    [11] Liu G, Jia J, Zhang K et al. 15% efficiency tandem organic solar cell based on a novel highly efficient wide-bandgap nonfullerene acceptor with low energy loss[J]. Advanced Energy Materials, 9, 1803657(2019).

    [12] Huang Y Z, Meng L X, Liang H Z et al. Tandem organic solar cells with 18.67% efficiency via careful subcell design and selection[J]. Journal of Materials Chemistry A, 10, 11238-11245(2022).

    [13] Ho C, Kim T, Xiong Y et al. High‐performance tandem organic solar cells using hsolar as the interconnecting layer[J]. Advanced Energy Materials, 10, 2000823.1-2000823.10(2020).

    [14] Lu S, Ouyang D, Choy W C H et al. Recent progress of interconnecting layer for tandem organic solar cells[J]. Science China(Chemistry), 60, 460-471(2017).

    [15] Brinkmann K O, Becker T, Zimmermann F et al. Perovskite-organic tandem solar cells with indium oxide interconnect[J]. Nature, 604, 280-286(2022).

    [16] Wang D, Zhou G Q, Li Y H et al. High-performance organic solar cells from non-halogenated solvents[J]. Advanced Functional Materials, 32, 2107827.1-2107827.8(2022).

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    Jingang HUANG, Qiao ZHENG. Tandem Organic Solar Cells Based on MoO3/Au/ZnO Interconnecting Layer[J]. Optoelectronic Technology, 2023, 43(4): 327

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    Paper Information

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    Received: Feb. 1, 2023

    Accepted: --

    Published Online: Mar. 21, 2024

    The Author Email:

    DOI:10.19453/j.cnki.1005-488x.2023.04.009

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