Solar energy paper index

Phase-pure MAPbBr3 thin films prepared by room-temperature powder aerosol deposition (PAD) and their optical and electrical properties

2026-07-01 · Journal of Materials Science

One-line summary

A solar energy research paper on Phase-pure MAPbBr3 thin films prepared by room-temperature powder aerosol deposition (PAD) and their optical and electrical properties.

Engineering notes

Engineering notes will be added by the Power for Solar editorial team.

Chinese explanation / 中文解读

中文解读待补充:本站会优先为光伏效率、钙钛矿太阳能电池、储能技术、太阳能热利用、BIPV、并网技术等高价值论文补充中文说明。

Original abstract

Abstract Preparing MAPbBr 3 films with thicknesses beyond a few micrometers remains challenging because solution-based deposition—particularly when multiple coating steps are required—can induce solvent-related film cracking and defects, while thermal exposure can accelerate degradation and compromise phase integrity. Here, we demonstrate that room-temperature powder aerosol deposition (PAD) enables the fabrication of dense, mechanically consolidated methylammonium lead bromide (MAPbBr 3 ) films with thicknesses ranging from several micrometers up to several tens of micrometers. The high-velocity particle impact inherent to PAD does not compromise phase purity or crystal structure; instead, the deposited particles fracture into nanocrystallites (~ 90 nm) exhibiting low microstrain. Optical characterization confirms that the bandgap (~ 2.3 eV) remains unchanged relative to the precursor powder, demonstrating that the electronic structure remains largely preserved during the aerosol deposition process. Temperature-dependent impedance spectroscopy (293–383 K) reveals thermally activated ionic transport with activation energies of 0.55–0.59 eV, consistent with bromide vacancy formation and migration. Analysis of the dielectric loss tangent within the Trukhan framework gives an ionic diffusion coefficient of 3.1 × 10 −8 cm 2 s −1 , an ionic mobility of 1.2 × 10 −6 cm 2 V −1 s −1 , and a mobile ion concentration of 2.6 × 10 16 cm −3 at 293 K. This study establishes the first systematic investigation of ionic transport in PAD halide perovskite films, providing insight into bulk ion migration and the associated electrode interfacial polarization.

5.0Engineering value
7.0Research novelty
4.0Business relevance

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