Mixing I and Br in Inorganic Perovskites: Atomistic Insights from Reactive Molecular Dynamics Simulations
Mike Pols, Adri C. T. van Duin, Sof\'ia Calero, Shuxia Tao

TL;DR
This study uses reactive molecular dynamics to explore how Br incorporation affects phase stability and internal dynamics in mixed CsPb(Br$_x$I$_{1-x}$)$_3$ perovskites, revealing strain-induced effects on phase transitions.
Contribution
Developed a reactive force field for mixed halide perovskites and demonstrated how Br content influences phase transition temperatures and lattice strain effects.
Findings
Increasing Br lowers the cubic phase transition temperature.
Small Br concentrations induce lattice strain affecting internal octahedral dynamics.
Strain effects propagate up to 2 nm, impacting phase stability.
Abstract
All-inorganic halide perovskites have received a lot of attention as attractive alternatives to overcome the stability issues of hybrid halide perovskites that are commonly associated with organic cations. To find a compromise between the optoelectronic properties of CsPbI and CsPbBr, perovskites with CsPb(BrI) mixed compositions are commonly used. An additional benefit is that, without sacrificing the optoelectronic properties for applications such as solar cells or LEDs, small amounts of Br in CsPbI can prevent the inorganic perovskite from degrading to a photoinactive nonperovskite yellow phase. Despite indications that strain in the perovskite lattice plays a role in the stabilization of the material, a full understanding of such strain is lacking. Here we develop a reactive force field (ReaxFF) for perovskites starting from our…
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