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Wide range zero-thermal-quenching ultralong phosphorescence from zero-dimensional metal halide hybrids.


ABSTRACT: Materials with ultralong phosphorescence have wide-ranging application prospects in biological imaging, light-emitting devices, and anti-counterfeiting. Usually, molecular phosphorescence is significantly quenched with increasing temperature, rendering it difficult to achieve high-efficiency and ultralong room temperature phosphorescence. Herein, we spearhead this challenging effort to design thermal-quenching resistant phosphorescent materials based on an effective intermediate energy buffer and energy transfer route. Co-crystallized assembly of zero-dimensional metal halide organic-inorganic hybrids enables ultralong room temperature phosphorescence of (Ph4P)2Cd2Br6 that maintains luminescent stability across a wide temperature range from 100 to 320?K (?T?=?220?°C) with the room temperature phosphorescence quantum yield of 62.79% and lifetime of 37.85?ms, which exceeds those of other state-of-the-art systems. Therefore, this work not only describes a design for thermal-quenching-resistant luminescent materials with high efficiency, but also demonstrates an effective way to obtain intelligent systems with long-lasting room temperature phosphorescence for optical storage and logic compilation applications.

SUBMITTER: Liu S 

PROVIDER: S-EPMC7494901 | biostudies-literature | 2020 Sep

REPOSITORIES: biostudies-literature

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Wide range zero-thermal-quenching ultralong phosphorescence from zero-dimensional metal halide hybrids.

Liu Shuya S   Fang Xiaoyu X   Lu Bo B   Yan Dongpeng D  

Nature communications 20200916 1


Materials with ultralong phosphorescence have wide-ranging application prospects in biological imaging, light-emitting devices, and anti-counterfeiting. Usually, molecular phosphorescence is significantly quenched with increasing temperature, rendering it difficult to achieve high-efficiency and ultralong room temperature phosphorescence. Herein, we spearhead this challenging effort to design thermal-quenching resistant phosphorescent materials based on an effective intermediate energy buffer an  ...[more]

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