Molecular Derailment via Pressurization in Methylammonium Lead Iodide

Abstract

Hybrid organic–inorganic perovskites combine outstanding optoelectronic properties with low‐cost fabrication, yet their structural fragility under environmental factors limits device stability. In this work, we have employed high-resolution inelastic neutron scattering in the GPa regime alongside first‐principles calculations to probe the pressure‐temperature phase behavior of methylammonium lead iodide MAPbI3. Below 1 GPa, we observe a systematic stiffening of NH…I hydrogen bonds concomitant with a contraction of the inorganic framework. Between 1 and 1.25 GPa, the INS data exhibit a pronounced broadening of cation librational features, corresponding to a transition to highly disordered organic-cation environments reminiscent of (the maximally tilted) high-pressure cubic phase. This hitherto unexplored ‘derailed’ state of MAPbI3 is characterized by a broad distribution of NH…I bond lengths, in stark contrast with the well‐defined hydrogen‐bond network of the low‐temperature phase observed at lower pressures. Our experimental and computational results bring to the fore the central (and rather subtle) role played by NH…I hydrogen bonds across organic and inorganic sub-lattices in dictating the regions of physical stability and metastability of this important material.

Publication
ChemRxiv Materials Chemistry
Pelayo Marín-Villa
Pelayo Marín-Villa
PhD candidate

PhD candidate at the Materials Physics Center, Donostia.

Pablo Gila-Herranz
Pablo Gila-Herranz
PhD candidate

PhD candidate at the Materials Physics Center, Donostia - San Sebastián.

Kacper Drużbicki
Kacper Drużbicki
Post doctoral researcher

Postdoc at the Materials Physics Center, Donostia.

Felix Fernandez-Alonso
Felix Fernandez-Alonso
Ikerbasque Research Professor

Ikerbasque Research Professor at the Materials Physics Center, Donostia - San Sebastián.