The role of thermal fluctuations and vibrational entropy for the delta-to-alpha transition in hybrid organic-inorganic perovskites: the FAPbI3 case
Junwen Yin, Gilberto Teobaldi, Li-Min Liu

TL;DR
This study uses computational methods to reveal that vibrational entropy drives the delta-to-alpha phase transition in FAPbI3, emphasizing the dynamic tetragonal structure's role in stability and phase behavior.
Contribution
It uncovers the dynamic tetragonal nature of the alpha-phase and highlights vibrational entropy as the key factor in the phase transition, challenging previous assumptions.
Findings
The alpha-phase is a highly dynamic tetragonal structure.
The cubic structure results from averaging tetragonal distortions.
Vibrational entropy, not rotational entropy, drives the phase transition.
Abstract
FAPbI3, as a typical hybrid organic-inorganic perovskite, has attracted considerable interest due to its band gap suitable for visible light absorption and good thermal stability. A barrier to the use of FAPbI3 in commercial, stable devices is its unwanted black-to-yellow (non-perovskite to perovskite, commonly known as delta-to-alpha) phase transition at around 300 K. The intrinsic mechanisms of such phase transition are far from clear, being the detailed structural description for the alpha-phase still missing. By combined Density Functional Theory (DFT) calculations, lattice dynamics analysis and DFT molecular dynamics simulations, we assign the alpha-phase to the highly dynamic tetragonal phase, with the high-symmetry cubic structure emerging as a dynamically unstable maximum in the system potential energy landscape. We demonstrate computationally that the diffraction-observed cubic…
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Taxonomy
TopicsPerovskite Materials and Applications · Solid-state spectroscopy and crystallography · Conducting polymers and applications
