ZnBr2-Assisted Br-Rich Regulation of Blue-Emitting CsPbBr3 Nanoplatelets Synthesized at Low Temperature

All-inorganic CsPbBr3 nanoplatelets (NPLs) have attracted considerable interest for light-emitting, wavelength-conversion, and flexible photonic applications owing to their high color purity, tunable bandgap, and excellent luminescence performance. However, their large specific surface area makes them highly susceptible to surface halide vacancies, which introduce abundant nonradiative recombination centers and thereby compromise both emission efficiency and thermal stability. Herein, CsPbBr3 NPLs with varying Br/Pb ratios were synthesized through a low-temperature hot-injection route, with ZnBr2 introduced as an additional Br source to elucidate the effects of Br-rich regulation on the microstructure, surface chemistry, and optical properties of the NPLs. The results show that ZnBr2 effectively passivates bromine-vacancy defects and optimizes the Pb-Br coordination environment while preserving the original crystal framework and ligand environment, thereby promoting radiative recombination. Under optimized conditions, the photoluminescence quantum yield increased from 26.7% at Br/Pb = 2 to 87.5% at Br/Pb = 6, while the average lifetime reached 11.78 ns. Temperature-dependent PL spectra further reveal that Br-rich regulation suppresses deep-trap-assisted nonradiative recombination and mitigates thermally activated energy dissipation. The resulting composite film not only exhibits efficient wavelength conversion but also enables direct visualization of ultraviolet optical paths on complex optomechanical components through robust interfacial adhesion. This work provides mechanistic insights into defect engineering and thermal stability enhancement in CsPbBr3 NPLs, while broadening their potential for flexible photonic integration.

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Publication Details

Journal
ACS Applied Materials & Interfaces
Published
2026-09-28
DOI
https://doi.org/10.1021/acsami.6c10949
Primary Topic
Perovskite Materials and Applications
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article
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article

ZnBr2-Assisted Br-Rich Regulation of Blue-Emitting CsPbBr3 Nanoplatelets Synthesized at Low Temperature

Qiangqiang Zhu, 梁光璧, Le Wang, Yue Zhai et al.
ACS Applied Materials & Interfaces
Perovskite Materials and Applications
article

ZnBr2-Assisted Br-Rich Regulation of Blue-Emitting CsPbBr3 Nanoplatelets Synthesized at Low Temperature

Qiangqiang Zhu, 梁光璧, Le Wang, Yue Zhai, Zhi Wen, Yubin Kang, Juan Kang, Meng Xu, Tengfei Wu
article en

Abstract

All-inorganic CsPbBr3 nanoplatelets (NPLs) have attracted considerable interest for light-emitting, wavelength-conversion, and flexible photonic applications owing to their high color purity, tunable bandgap, and excellent luminescence performance. However, their large specific surface area makes them highly susceptible to surface halide vacancies, which introduce abundant nonradiative recombination centers and thereby compromise both emission efficiency and thermal stability. Herein, CsPbBr3 NPLs with varying Br/Pb ratios were synthesized through a low-temperature hot-injection route, with ZnBr2 introduced as an additional Br source to elucidate the effects of Br-rich regulation on the microstructure, surface chemistry, and optical properties of the NPLs. The results show that ZnBr2 effectively passivates bromine-vacancy defects and optimizes the Pb-Br coordination environment while preserving the original crystal framework and ligand environment, thereby promoting radiative recombination. Under optimized conditions, the photoluminescence quantum yield increased from 26.7% at Br/Pb = 2 to 87.5% at Br/Pb = 6, while the average lifetime reached 11.78 ns. Temperature-dependent PL spectra further reveal that Br-rich regulation suppresses deep-trap-assisted nonradiative recombination and mitigates thermally activated energy dissipation. The resulting composite film not only exhibits efficient wavelength conversion but also enables direct visualization of ultraviolet optical paths on complex optomechanical components through robust interfacial adhesion. This work provides mechanistic insights into defect engineering and thermal stability enhancement in CsPbBr3 NPLs, while broadening their potential for flexible photonic integration.

ACS Applied Materials & Interfaces
Beijing Institute of Technology (CN), Beijing Zhenxing Metrology & Measurement Institute (CN), China Jiliang University (CN)
Affordable and clean energy
Openalex Percentile: Top 22%
Perovskite Materials and Applications
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