4.8 Article

Boosting Power Conversion Efficiencies of Quantum-Dot-Sensitized Solar Cells Beyond 8% by Recombination Control

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 137, Issue 16, Pages 5602-5609

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jacs.5b01946

Keywords

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Funding

  1. Natural Science Foundation of China [21421004, 91433106, 21175043]
  2. Science and Technology Commission of Shanghai Municipality [11JC1403100, 12NM0504101]
  3. Fundamental Research Funds for the Central Universities in China
  4. Max Planck Society and Universitat Jaume I [121361.01/1]
  5. Graduate School Materials Science in Mainz funded through the German Research Foundation in the Excellence Initiative [GSC 266]

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At present, quantum-dot-sensitized solar cells (QDSCs) still exhibit moderate power conversion efficiency (with record efficiency of 6-7%), limited primarily by charge recombination. Therefore, suppressing recombination processes is a mandatory requirement to boost the performance of QDSCs. Herein, we demonstrate the ability of a novel sequential inorganic ZnS/SiO2, double layer treatment onto the QD-sensitized photoanode for strongly inhibiting interfacial recombination processes in QDSCs while providing improved cell stability. Theoretical modeling and impedance spectroscopy reveal that the combined ZnS/SiO2 treatment reduces interfacial recombination and increases charge collection efficiency when compared with conventional ZnS treatment alone. In line with those results, subpicosecond THz spectroscopy demonstrates that while QD to TiO2 electron-transfer rates and yields are insensitive to inorganic photoanode overcoating, back recombination at the oxide surface is strongly suppressed by subsequent inorganic treatments. By exploiting this approach, cdSe(x)Te(1-x), QDSCs exhibit a certified record efficiency of 8.21% (8.55% for a champion cell), an improvement of 20% over the previous record high efficiency of 6.8%, together with an additional beneficial effect of improved cell stability:

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