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

Title data

Xu, Tianshan ; Griesbach, Markus ; Scholz, Till ; Paulus, Daniel ; Hämmerle, Martin ; Köhler, Anna ; Moos, Ralf:
Phase-pure MAPbBr₃ thin films prepared by room-temperature powder aerosol deposition (PAD) and their optical and electrical properties.
In: Journal of Materials Science. Vol. 61 (2026) . - pp. 23812-23834.
ISSN 1573-4803
DOI: https://doi.org/10.1007/s10853-026-13159-z

Official URL: Volltext

Project information

Project title:
Project's official title
Project's id
SFB 1585: Strukturierte Funktionsmaterialien für multiplen Transport in nanoskaligen räumlichen Einschränkungen
492723217

Project financing: Deutsche Forschungsgemeinschaft

Abstract in another language

Preparing MAPbBr3 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 (MAPbBr3) 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 cm2 s−1, an ionic mobility of 1.2 × 10^−6 cm2 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.

Further data

Item Type: Article in a journal
Refereed: Yes
Institutions of the University: Faculties > Faculty of Mathematics, Physics und Computer Science > Department of Physics > Chair Experimental Physics II - Optoelectronics of Soft Matter > Chair Experimental Physics II - Optoelectronics of Soft Matter - Univ.-Prof. Dr. Anna Köhler
Faculties > Faculty of Engineering Science
Faculties > Faculty of Engineering Science > Chair Functional Materials > Chair Functional Materials - Univ.-Prof. Dr.-Ing. Ralf Moos
Profile Fields > Advanced Fields > Advanced Materials
Research Institutions > Central research institutes > Bayreuth Institute of Macromolecular Research - BIMF
Research Institutions > Central research institutes > Bayreuth Center for Material Science and Engineering - BayMAT
Research Institutions > Affiliated Institutes > Bavarian Polymer Institute (BPI)
Research Institutions > Collaborative Research Centers, Research Unit > SFB 1585 - MultiTrans – Structured functional materials for multiple transport in nanoscale confinements
Result of work at the UBT: Yes
DDC Subjects: 600 Technology, medicine, applied sciences > 620 Engineering
Date Deposited: 16 Jul 2026 06:55
Last Modified: 16 Jul 2026 06:55
URI: https://eref.uni-bayreuth.de/id/eprint/99061