4.8 Article

Efficiency above 12% for 1 cm2 Flexible Organic Solar Cells with Ag/Cu Grid Transparent Conducting Electrode

Journal

ADVANCED SCIENCE
Volume 6, Issue 22, Pages -

Publisher

WILEY
DOI: 10.1002/advs.201901490

Keywords

1 cm(2); Ag; Cu grid; flexible organic solar cells; large-area

Funding

  1. National Natural Science Foundation of China [51773224, 51473184, 21875280]
  2. Youth Innovation Promotion Association, CAS [2019317]
  3. Natural Science Foundation of Jiangsu Province [BK20181197]
  4. Natural Science Foundation of Jiangxi Province [20181BAB206017]
  5. Visiting Scholar Foundation of State Key Lab of Silicon Materials, Zhejiang University [SKL2018-04]
  6. Suzhou Science and Technology Project [SYG201735]
  7. Ministry of Science and Technology of China [2016 YFA0200700, 2017 YFA0206600]

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With the rapid progress of organic solar cells (OSCs), improvement in the efficiency of large-area flexible OSCs (>1 cm(2)) is crucial for real applications. However, the development of the large-area flexible OSCs severely lags behind the growth of the small-area OSCs, with the electrical loss due to the large sheet resistance of the electrode being a main reason. Herein, a high conductive and high transparent Ag/Cu composite grid with sheet resistance <1 omega sq(-1) and an average visible light transparency of 84% is produced as the transparent conducting electrode of flexible OSCs. Based on this Ag/Cu composite grid electrode, a high efficiency of 12.26% for 1 cm(2) flexible OSCs is achieved. The performances of large-area flexible OSCs also reach 7.79% (4 cm(2)) and 7.35% (9 cm(2)), respectively, which are much higher than those of the control devices with conventional flexible indium tin oxide electrodes. Surface planarization using highly conductive PEDOT:PSS and modification of the ZnO buffer layer by zirconium acetylacetonate (ZrAcac) are two necessary steps to achieve high performance. The flexible OSCs employing Ag/Cu grid have excellent mechanical bending resistance, maintaining high performance after bending at a radius of 2 mm.

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