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April 27, 2015Nature Communications663 citationsOpen Access

Revealing the role of organic cations in hybrid halide perovskite CH3NH3PbI3

CMCarlo MottaFEFedwa El‐MellouhiSKSabre Kais

Key Points

  • To determine the microscopic role of organic cation orientation in controlling the electronic properties and high solar conversion efficiency of hybrid halide perovskite CH3NH3PbI3.
  • Performed van der Waals-corrected density functional theory (DFT) calculations on CH3NH3PbI3 crystal structures.
  • Modeled the electronic band structure changes resulting from different CH3NH3 molecular orientations and PbI6 octahedral cage distortions.
  • Orientation of CH3NH3 along a (011)-like direction distorts the PbI6 octahedral cage and transitions the bandgap into an indirect bandgap.
  • Dynamic band structure modulation driven by molecular rotations is identified as the likely mechanism for slow charge carrier recombination and superior light-harvesting efficiency.

Abstract

The hybrid halide perovskite CH3NH3PbI3 has enabled solar cells to reach an efficiency of about 20%, demonstrating a pace for improvements with no precedents in the solar energy arena. Despite such explosive progress, the microscopic origin behind the success of such material is still debated, with the role played by the organic cations in the light-harvesting process remaining unclear. Here van der Waals-corrected density functional theory calculations reveal that the orientation of the organic molecules plays a fundamental role in determining the material electronic properties. For instance, if CH3NH3 orients along a (011)-like direction, the PbI6 octahedral cage will distort and the bandgap will become indirect. Our results suggest that molecular rotations, with the consequent dynamical change of the band structure, might be at the origin of the slow carrier recombination and the superior conversion efficiency of CH3NH3PbI3.

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Cite This Study

Motta et al. (2015) studied this question.

synapsesocial.com/papers/69dc6889ac480df60a133354https://doi.org/10.1038/ncomms8026
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