4.8 Article

High Efficiency Mesoscopic Solar Cells Using CsPbI3 Perovskite Quantum Dots Enabled by Chemical Interface Engineering

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 142, Issue 8, Pages 3775-3783

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jacs.9b10700

Keywords

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Funding

  1. National Natural Science Foundation of China [11674258, 51602305, 61875139, 51702219]
  2. 111 Project [B18038]
  3. Key projects of Natural Science Foundation of Hubei Province [2019CFA044]
  4. Fundamental Research Funds for the Central Universities [2017II22GX]
  5. Nature Science Foundation of Guangdong Province [2018A030313401]
  6. Science and Technology Innovation Commission of Shenzhen [JCYJ20170818141519879, JCYJ20170818141429525]
  7. China Postdoctoral Science Foundation [2018M633102, 2017M620383]
  8. Shenzhen Nanshan District Pilotage Team Program [LHTD20170006]
  9. Australian Research Council (ARC) [FT150100450, IH150100006, DP160104575, CE170100026, CE170100039]
  10. French Research Agency ANR [SuperSansPlomb ANR-15-CE05-0023-01, PERSIL ANR-16-CE05-0019-02]

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All-inorganic alpha-CsPbI3 perovskite quantum dots (QDs) are attracting great interest as solar cell absorbers due to their appealing light harvesting properties and enhanced stability due to the absence of volatile organic constituents. Moreover, ex situ synthesized QDs significantly reduce the variability of the perovskite layer deposition process. However, the incorporation of alpha-CsPbI3 QDs into mesoporous TiO2 (m-TiO2) is highly challenging, but these constitute the best performing electron transport materials in state-of-the-art perovskite solar cells. Herein, the m-TiO2 surface is engineered using an electron-rich cesium-ion containing methyl acetate solution. As one effect of this treatment, the solid liquid interfacial tension at the TiO2 surface is reduced and the wettability is improved, facilitating the migration of the QDs into m-TiO2. As a second effect, Cs+ ions passivate the QD surface and promote the charge transfer at the m-TiO2/QD interface, leading to an enhancement of the electron injection rate by a factor of 3. In combination with an ethanol-environment smoothing route that significantly reduces the surface roughness of the m-TiO2/QD layer, optimized devices exhibit highly reproducible power conversion efficiencies exceeding 13%. The best cell with an efficiency of 14.32% (reverse scan) reaches a short-circuit current density of 17.77 mA cm(-2), which is an outstanding value for QD-based perovskite solar cells.

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