Titelangaben
Siegert, Tobias ; Pahwa, Prerna ; Griesbach, Markus ; Kahle, Frank-Julian ; Oberhofer, Harald ; Köhler, Anna ; Grüninger, Helen:
Modelling Thermal Halide Exchange of Perovskite Powders With and Without BMIMBF₄ From an Interdiffusion Perspective.
In: Advanced Functional Materials.
(8 August 2025)
.
- e10920.
ISSN 1616-3028
DOI: https://doi.org/10.1002/adfm.202510920
Angaben zu Projekten
Projekttitel: |
Offizieller Projekttitel Projekt-ID Entwicklung von Struktur, Ionenwanderung und Defekteigenschaften während der (Ent-)Mischung von Bleihalogenid-Perowskiten verstehen (DE-MIX) 506642499 SFB 1585: Strukturierte Funktionsmaterialien für multiplen Transport in nanoskaligen räumlichen Einschränkungen 492723217 GRK 2818: Optische Anregungen in organischen und anorganischen Halbleitern: Verstehen und Kontrollieren durch externe Stimuli 464648186 |
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Projektfinanzierung: |
Deutsche Forschungsgemeinschaft |
Abstract
Halide migration limits the stability of hybrid halide perovskites for optoelectronic applications, yet can be decelerated at room temperature by adding ionic liquids. An approach is presented to quantitatively evaluate the diffusion of I− and Br− to form MAPbIxBr3-x from neat perovskite powders. First, in situ X-ray diffraction (XRD) data are used to extract the time-dependent MAPbIxBr3-x composition of an initially physical mixture of neat MAPbI3 and MAPbBr3 grains. Next, an effective interdiffusion model is expanded to obtain time-dependent diffusion coefficients. They reduce with time due to the decreasing concentration gradient during the halide exchange process. In samples without any additive, Br− is found to diffuse up to three times faster into the MAPbI3 grains than I− into the MAPbBr3 grains, while the addition of the ionic liquid 1-Butyl-3-methylimidazolium tetrafluoroborate (BMIMBF4) accelerates and nearly equalizes the interdiffusion. Analyzing the temperature dependence of the diffusion coefficient suggests that, without ionic liquid, the diffusivities are limited by the halide vacancy formation. In contrast, in the presence of the ionic liquid, halide vacancy formation is facilitated, yet is controlled by the thermal activation of the BMIM+ mobility.