4.6 Article

Highly efficient and stable low-temperature processed ZnO solar cells with triple cation perovskite absorber

期刊

JOURNAL OF MATERIALS CHEMISTRY A
卷 5, 期 26, 页码 13439-13447

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c7ta03331a

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资金

  1. 973 Program [2014CB643506]
  2. Natural Science Foundation of China [21221063, 11574111]
  3. Program for Chang Jiang Scholars and Innovative Research Team in University [IRT101713018]
  4. Program for Changbaishan Scholars of Jilin Province
  5. Graduate Innovation Fund of Jilin University [2016017]
  6. Japan Science and Technology Agency (JST) Advanced Low Carbon Technology R&D program (ALCA)

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Although ZnO is a compatible electron transport layer (ETL) for perovskite solar cells (PSCs), the fact that MAPbI(3) easily undergoes thermal decomposition on a low-temperature processed ZnO surface limits the use of one step deposition of perovskite and hence the resulting photovoltaic performance. Herein, we demonstrate triple cation perovskite (Cs-x(MA(0.17)FA(0.83))((100-x))Pb(I0.83Br0.17) 3) Prepared with a one-step deposition method as a stable light absorber in highly efficient PSCs with low-temperature processed ZnO as the ETL. The photovoltaic performance of the investigated PSCs was dependent on both the annealing temperature of the perovskite film and the composition of the Cs element in the perovskite structure. A remnant PbI2 passivation phase in the perovskite layer, in which the composition is Cs-6(MA(0.17)FA(0.83))(94)Pb(I0.83Br0.17)(3) and the annealing temperature is 95 degrees C, leads to the highest power conversion efficiency of similar to 18.9%, which is a record-high so far for low-temperature processed ZnO-based PSCs. Importantly, this PSC exhibits excellent environmental durability and photostability, which are critical characteristics for further commercialization of low temperature processed PSCs.

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