| Literature DB >> 34946624 |
Andrey A Petrov1, Artem A Ordinartsev1, Sergey A Fateev1, Eugene A Goodilin1,2, Alexey B Tarasov1.
Abstract
Solution methods remain the most popular means for the fabrication of hybrid halide perovskites. However, the solubility of hybrid perovskites has not yet been quantitively investigated. In this study, we present accurate solubility data for MAPbI3, FAPbI3, MAPbBr3 and FAPbBr3 in the two most widely used solvents, DMF and DMSO, and demonstrate huge differences in the solubility behavior depending on the solution compositions. By analyzing the donor numbers of the solvents and halide anions, we rationalize the differences in the solubility behavior of hybrid perovskites with various compositions, in order to take a step forward in the search for better processing conditions of hybrid perovskites for solar cells and optoelectronics.Entities:
Keywords: donor numbers; hybrid perovskites; lead halide perovskites; perovskite photovoltaics; solubility; solution processing
Year: 2021 PMID: 34946624 PMCID: PMC8706401 DOI: 10.3390/molecules26247541
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Solubility of hybrid perovskites of different compositions in DMF (a) and DMSO (b) within the range of 30–120 °C. Solubility of (MAPbBr3)0.15(FAPbI3)0.85 at 30 °C and 90 °C in DMF, DMSO and DMF/DMSO (4:1 v/v) mixture (c). * Data on FAPbBr3 and MAPbBr3 solubilities showed by dashed lines are determined by M. Saidaminov et al. [7].
Solubility behavior of hybrid perovskite depending on the solution composition.
| Interaction Intensity Pb2+—X− | ||||||
|---|---|---|---|---|---|---|
| Iodides | Bromides | Chlorides | ||||
| MAPbI3 | FAPbI3 | MAPbBr3 | FAPbBr3 | MAPbCl3 | ||
|
|
| direct + | inverse [ | insoluble | insoluble | insoluble |
|
| direct | direct + | inverse [ | inverse [ | inverse | |
|
| direct | direct | direct + | direct | ||
“Direct” and “inverse” refer to direct (growth) and inverse (decline, retrograde) dependences of solubility on temperature.