Heterophase Engineering of Mechanochemically‐Synthesised All‐Inorganic Ternary Copper Iodide for Tuneable White Light Emission

ABSTRACT Ternary metal halides have recently emerged as promising optoelectronic materials due to their ambient stability and high photoluminescence quantum yields from the low dimensionality of electronic structures. Their strong exciton‐phonon coupling enables broadband self‐trapped exciton emission, advantageous for white light‐emitting diode (WLED) applications. Particularly, the all‐inorganic caesium copper iodide (Cs‐Cu‐I) system – comprising blue‐emitting 0D Cs 3 Cu 2 I 5 and yellow‐emitting 1D CsCu 2 I 3 phases – offers a broadband white light emission spectrum with facile chromaticity tunability and emission stability. However, mechanistic understanding of multiphase formation and corresponding multiscale structural information has been limited for Cs‐Cu‐I, as well as its influence on emission properties. Here, we employ mechanochemical synthesis (MCS) as a solvent‐free, time‐resolved platform to investigate solid‐state reaction pathways by quenching at defined milling times, enabling correlation of structural evolution with photophysical responses. We observe a kinetically accessible formation pathway of a 0D/1D heterophase with a physical interface, with interfacial charge transfer and defect passivation effects that enhance the weakly‐emissive 1D phase, from which we designed optimal synthesis routes for 0D/1D heterophase‐based colour‐conversion device applications. This work establishes a comprehensive structure‐emission framework for Cs‐Cu‐I heterophase system and provides design principles and practical protocols for developing interface engineering in ternary metal‐halide emitters in next‐generation optoelectronics.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-08-26
DOI
https://doi.org/10.1002/adfm.77963
Primary Topic
Perovskite Materials and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Heterophase Engineering of Mechanochemically‐Synthesised All‐Inorganic Ternary Copper Iodide for Tuneable White Light Emission

Takhee Lee, Hyeonmin Choi, Keehoon Kang, Kyeong‐Yoon Baek et al.
Advanced Functional Materials
Perovskite Materials and Applications
article

Heterophase Engineering of Mechanochemically‐Synthesised All‐Inorganic Ternary Copper Iodide for Tuneable White Light Emission

Takhee Lee, Hyeonmin Choi, Keehoon Kang, Kyeong‐Yoon Baek, Fan‐Cheng Kong, Jeongjae Lee, Philip C. Y. Chow, Woo Hyeon Jeong, Bo Ram Lee, Jaeyoon Cho, Jae Il Kim, Yongjin Kim
article en

Abstract

ABSTRACT Ternary metal halides have recently emerged as promising optoelectronic materials due to their ambient stability and high photoluminescence quantum yields from the low dimensionality of electronic structures. Their strong exciton‐phonon coupling enables broadband self‐trapped exciton emission, advantageous for white light‐emitting diode (WLED) applications. Particularly, the all‐inorganic caesium copper iodide (Cs‐Cu‐I) system – comprising blue‐emitting 0D Cs 3 Cu 2 I 5 and yellow‐emitting 1D CsCu 2 I 3 phases – offers a broadband white light emission spectrum with facile chromaticity tunability and emission stability. However, mechanistic understanding of multiphase formation and corresponding multiscale structural information has been limited for Cs‐Cu‐I, as well as its influence on emission properties. Here, we employ mechanochemical synthesis (MCS) as a solvent‐free, time‐resolved platform to investigate solid‐state reaction pathways by quenching at defined milling times, enabling correlation of structural evolution with photophysical responses. We observe a kinetically accessible formation pathway of a 0D/1D heterophase with a physical interface, with interfacial charge transfer and defect passivation effects that enhance the weakly‐emissive 1D phase, from which we designed optimal synthesis routes for 0D/1D heterophase‐based colour‐conversion device applications. This work establishes a comprehensive structure‐emission framework for Cs‐Cu‐I heterophase system and provides design principles and practical protocols for developing interface engineering in ternary metal‐halide emitters in next‐generation optoelectronics.

Advanced Functional Materials
Seoul National University (KR), Harvard University Press (US), Sungkyunkwan University (KR), University of Hong Kong (HK)
Seoul National University, National Research Foundation of Korea
Industry, innovation and infrastructure
Openalex Percentile: Top 19%
Perovskite Materials and Applications
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