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July 7, 2017Science Advances197 citationsOpen Access

Light-induced picosecond rotational disordering of the inorganic sublattice in hybrid perovskites

XWXiaoxi WuLTLiang Z. TanXSXiaozhe Shen

Key Points

  • To resolve the initial atomic-scale structural steps and energy transfer dynamics from photoexcited hot carriers to the inorganic lattice in hybrid perovskites.
  • Applied femtosecond-resolution electron scattering techniques to track atomic structural changes after above-gap photoexcitation in methylammonium lead iodide.
  • Measured time-dependent changes in mean square atomic displacements and pair distribution functions across 10-picosecond timescales.
  • Resolved direct energy transfer from hot carriers to the lattice occurring on 10-picosecond timescales.
  • Detected significant broadening of the iodine-iodine correlation function while preserving the lead-iodine distance, revealing rapid formation of a rotationally disordered halide octahedral structure.

Abstract

Femtosecond resolution electron scattering techniques are applied to resolve the first atomic-scale steps following absorption of a photon in the prototypical hybrid perovskite methylammonium lead iodide. Following above-gap photoexcitation, we directly resolve the transfer of energy from hot carriers to the lattice by recording changes in the mean square atomic displacements on 10-ps time scales. Measurements of the time-dependent pair distribution function show an unexpected broadening of the iodine-iodine correlation function while preserving the Pb-I distance. This indicates the formation of a rotationally disordered halide octahedral structure developing on picosecond time scales. This work shows the important role of light-induced structural deformations within the inorganic sublattice in elucidating the unique optoelectronic functionality exhibited by hybrid perovskites and provides new understanding of hot carrier-lattice interactions, which fundamentally determine solar cell efficiencies.

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Cite This Study

Wu et al. (2017) studied this question.

synapsesocial.com/papers/6a0021e0da5c1eb07f2d9ac6https://doi.org/10.1126/sciadv.1602388
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