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May 25, 2016Nano Letters298 citationsOpen Access

Polaron Stabilization by Cooperative Lattice Distortion and Cation Rotations in Hybrid Perovskite Materials

ANAmanda J. NeukirchWNWanyi NieJBJean‐Christophe Blancon

Key Points

  • To elucidate the photophysical mechanisms responsible for small polaron formation, charge localization, and modest carrier mobilities in hybrid organometallic perovskite solar materials.
  • Performed computational calculations using hybrid density functional theory (DFT).
  • Modeled small polaron formation, electronic structures, charge densities, and reorganization energies across periodic boundary conditions and isolated cluster models of CsPbI3 and MAPbI3.
  • Volumetric strain alone in CsPbI3 clusters induces polaron formation with binding energies of approximately 300 meV for holes and 900 meV for electrons.
  • Cooperative volumetric lattice strain and methylammonium (MA) cation rotations in MAPbI3 yield substantially higher polaron binding energies of approximately 600 meV for holes and 1300 meV for electrons.
  • Large reorganization energies confirm the stabilization of small polarons, suggesting that substituting MA with formamidinium (FA) or cesium (Cs) can mitigate carrier trapping in optoelectronic devices.

Abstract

Solution-processed organometallic perovskites have rapidly developed into a top candidate for the active layer of photovoltaic devices. Despite the remarkable progress associated with perovskite materials, many questions about the fundamental photophysical processes taking place in these devices, remain open. High on the list of unexplained phenomena are very modest mobilities despite low charge carrier effective masses. Moreover, experiments elucidate unique degradation of photocurrent affecting stable operation of perovskite solar cells. These puzzles suggest that, while ionic hybrid perovskite devices may have efficiencies on par with conventional Si and GaAs devices, they exhibit more complicated charge transport phenomena. Here we report the results from an in-depth computational study of small polaron formation, electronic structure, charge density, and reorganization energies using both periodic boundary conditions and isolated structures. Using the hybrid density functional theory, we found that volumetric strain in a CsPbI3 cluster creates a polaron with binding energy of around 300 and 900 meV for holes and electrons, respectively. In the MAPbI3 (MA = CH3NH3) cluster, both volumetric strain and MA reorientation effects lead to larger binding energies at around 600 and 1300 meV for holes and electrons, respectively. Such large reorganization energies suggest appearance of small polarons in organometallic perovskite materials. The fact that both volumetric lattice strain and MA molecular rotational degrees of freedom can cooperate to create and stabilize polarons indicates that in order to mitigate this problem, formamidinium (FA = HC(NH2)2) and cesium (Cs) based crystals and alloys, are potentially better materials for solar cell and other optoelectronic applications.

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Cite This Study

Neukirch et al. (2016) studied this question.

synapsesocial.com/papers/69d7f9133eff0c9dfaae2e59https://doi.org/10.1021/acs.nanolett.6b01218
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