We report a comprehensive study of the chemistry of perovskite optoelectronic device degradation and show that redox reactions are fundamental to the degradation process for CH 3 NH 3 PbI 3, CsPbI 3, and CsPbBr 3 perovskites with Ag, Al, Yb, or Cr contacts. Using in situ X-ray diffraction measurements, we study the chemistry of CH 3 NH 3 PbI 3 perovskite devices equipped with Al electrodes; we find that Al 0 rapidly reduces Pb 2+ to Pb 0, converting CH 3 NH 3 PbI 3 first to (CH 3 NH 3 ) 4 PbI 6 ·2H 2 O and then to CH 3 NH 3 I. In situ scanning electron microscopy measurements show that moisture enables continued reaction of the Al and perovskite layers by facilitating ion diffusion, before serving as a decomposition reagent for the perovskite film. Redox reactions follow what is expected based on standard electrochemical potentials for Al, Cr, and Yb; for Ag, the redox chemistry is enabled by the presence of iodide. We emphasize that critical chemical reactions can stem from intrinsic interfacial interactions between the layers in a device and not necessarily from external agents; degradation studies must consider the device as an entity, rather than focusing only on the stability of perovskite films.
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Zhao et al. (2016) studied this question.
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