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基于RbMnBr₃(H₂O)₃的高温、可逆且稳定的用于防伪的热致变色荧光

High-Temperature, Reversible, and Robust Thermochromic Fluorescence Based on Rb MnBr (H O) for Anti-Counterfeiting.

作者信息

Liu Yang, Liu Gaoyu, Wu Ye, Cai Wenbing, Wang Yue, Zhang Shengli, Zeng Haibo, Li Xiaoming

机构信息

MIIT Key Laboratory of Advanced Display Materials and Devices, Institute of Optoelectronics & Nanomaterials, College of Materials Science and Engineering, Nanjing University of Science and Technology, Nanjing, 210094, China.

出版信息

Adv Mater. 2023 Sep;35(35):e2301914. doi: 10.1002/adma.202301914. Epub 2023 Jul 13.

Abstract

Thermochromic fluorescent materials (TFMs) characterized by noticeable emission color variation with temperature have attracted pervasive attention for their frontier application in stimulus-response and optical encryption technologies. However, existing TFMs typically suffer from weak PL reversibility as well as limited mild operating temperature and severe temperature PL quenching. PL switching under extreme conditions such as high temperature will undoubtedly improve encryption security, while it is still challenging for present TFMs. In this work, high-temperature thermochromic fluorescence up to 473 K and robust structural and optical reversibility of 80 cycles are observed in Rb MnBr (H O) and related crystals, which is seldom reported for PL changes at such a high temperature. Temperature-driven nonluminous, red and green light emission states can be achieved at specific temperatures and the modulation mechanism is verified by in situ optical and structural measurements and single particle transition. By virtue of this unique feature, a multicolor anti-counterfeiting label based on a broad temperature gradient and multidimensional information encryption applications are demonstrated. This work opens a window for the design of inorganic materials with multi-PL change and the development of advanced encryption strategies with extreme stimuli source.

摘要

热致变色荧光材料(TFMs)具有随温度显著变化的发射颜色,因其在刺激响应和光学加密技术中的前沿应用而受到广泛关注。然而,现有的热致变色荧光材料通常存在荧光可逆性差、温和工作温度有限以及严重的温度荧光猝灭等问题。在高温等极端条件下的荧光切换无疑会提高加密安全性,但对于目前的热致变色荧光材料来说仍然具有挑战性。在这项工作中,在RbMnBr(H₂O)及相关晶体中观察到高达473K的高温热致变色荧光以及80个循环的强大结构和光学可逆性,如此高温下的荧光变化鲜有报道。在特定温度下可以实现温度驱动的非发光、红色和绿色发光状态,并通过原位光学和结构测量以及单粒子跃迁验证了调制机制。凭借这一独特特性,展示了基于宽温度梯度的多色防伪标签和多维信息加密应用。这项工作为设计具有多种荧光变化的无机材料以及开发具有极端刺激源的先进加密策略打开了一扇窗口。

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