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Controllable Self-Induced Passivation of Hybrid Lead Iodide Perovskites toward High Performance Solar Cells

Nano Letters · 2014 · Vol. 14(7) · pp. 4158–4163
Qi ChenHuanping ZhouTze‐Bin SongSong LuoZiruo HongHsin‐Sheng DuanLetian DouYongsheng LiuYang Yang

Abstract

To improve the performance of the polycrystalline thin film devices, it requires a delicate control of its grain structures. As one of the most promising candidates among current thin film photovoltaic techniques, the organic/inorganic hybrid perovskites generally inherit polycrystalline nature and exhibit compositional/structural dependence in regard to their optoelectronic properties. Here, we demonstrate a controllable passivation technique for perovskite films, which enables their compositional change, and allows substantial enhancement in corresponding device performance. By releasing the organic species during annealing, PbI2 phase is presented in perovskite grain boundaries and at the relevant interfaces. The consequent passivation effects and underlying mechanisms are investigated with complementary characterizations, including scanning electron microscopy (SEM), X-ray diffraction (XRD), time-resolved photoluminescence decay (TRPL), scanning Kelvin probe microscopy (SKPM), and ultraviolet photoemission spectroscopy (UPS). This controllable self-induced passivation technique represents an important step to understand the polycrystalline nature of hybrid perovskite thin films and contributes to the development of perovskite solar cells judiciously.

Perovskite Materials and ApplicationsChalcogenide Semiconductor Thin FilmsQuantum Dots Synthesis And PropertiesPassivationCrystallitePerovskite (structure)Materials sciencePhotoluminescenceThin filmGrain boundaryScanning electron microscopeOptoelectronicsAnnealing (glass)

Funding

  • National Science Foundation
  • Air Force Office of Scientific Research
Citations
1,520
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