Recent advances in the synthesis and passivation of pure Bromide-based perovskite nanoplatelets

Abstract

The peculiar property of low-dimensional inorganic Lead Halide Perovskite materials has triggered the attention of researchers in the past decade. The astonishing optoelectronic properties of these materials make them attractive for the next-generation light-emitting diodes. The perovskite NPLs offer the advantage of thickness-controlled bandgap tunability making them suitable for optoelectronic applications. However, the quantum efficiency of the perovskite NPLs in the thin films is substantially low compared to dispersions due to their high surface-to-volume ratio. The undercoordinated atoms on the surface of the NPLs lead to the formation of a high density of defects, which consequently reduces the photoluminescence efficiency. In this review, we summarize various synthesis techniques and examine how the different ligand ratios affect the size, shape and morphological properties of the NPLs. We also investigate the effect of various isovalent and heterovalent ions in the A-site and B-site cations on the structural and optical properties. Furthermore, we have explored how metal ions influence the transformation of the morphological and optical properties of the NCs into NPLs. The labile ligands on the surface can be easily detached during the purification process or as the material ages due to poor interaction between them. The loss of these ligands from the nanocrystal surface leads to the formation of defects. It leads to the formation of deep traps within the bandgap and consequently reduces quantum efficiency. In this review, we discuss various ligands used for passivation of the surface defects through in-situ and post-synthesis methods. During the in-situ passivation process, we focus on the role of multidentate ligands, sulphur, phosphorous, polymer, zwitterionic compounds, silanes, and short-chain ligands. These ligands have demonstrated efficacy as passivating agents, helping to maintain high quantum efficiency and long-term stability. In the post-synthesis passivation strategy, several ligands were evaluated including metal bromide-ligand solution, Polysalt, bidentate ligands and short-chain ligands. The ligands enhance the stability while introducing new properties based on their functional moieties. Additionally, we rationalize the effects of different chiral ligands and their surface chemistry related to the synthesis and passivation of the NPLs.

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Article information

Article type
Review Article
Submitted
24 mar. 2025
Accepted
29 apr. 2025
First published
01 maí 2025

Nanoscale, 2025, Accepted Manuscript

Recent advances in the synthesis and passivation of pure Bromide-based perovskite nanoplatelets

S. R. Pathipati, S. Muhammad and N. Mishra, Nanoscale, 2025, Accepted Manuscript , DOI: 10.1039/D5NR01215E

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