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用于零维卤化锰(II)中空间和时间防伪应用的阳离子体系的策略性工程设计。

Strategic engineering of cationic systems for spatial & temporal anti-counterfeiting applications in zero-dimensional Mn(II) halides.

作者信息

Wu Yue, Zhang Xin, Zhao Di, Zhao Jia-Wei, Zhen Xiao-Meng, Zhang Bo

机构信息

Shandong Provincial Key Laboratory/Collaborative Innovation Center of Chemical Energy Storage and Novel Cell Technology, College of Chemistry and Chemical Engineering, Liaocheng University, Liaocheng 252059, China.

Shandong Provincial Key Laboratory/Collaborative Innovation Center of Chemical Energy Storage and Novel Cell Technology, College of Chemistry and Chemical Engineering, Liaocheng University, Liaocheng 252059, China.

出版信息

J Colloid Interface Sci. 2025 Jan 15;678(Pt C):430-440. doi: 10.1016/j.jcis.2024.09.122. Epub 2024 Sep 14.

Abstract

While spatial and time-resolved anti-counterfeiting technologies have gained increasing attention owing to their excellent tunable photoluminescence, achieving high-security-level anti-counterfeiting remains a challenge. Herein, we developed a spatial-time-dual-resolved anti-counterfeiting system using zero-dimensional (0D) organic-inorganic Mn(II) metal halides: (EMMZ)MnBr (named M-1, EMMZ=1-Ethyl-3-Methylimidazolium Bromide) and (EDMMZ)MnBr (named M-2, EDMMZ=1-Ethyl-2,3-Dimethylimidazolium Bromide). M-1 shows a bright green emission with a quantum yield of 78 %. It undergoes a phase transformation from the crystalline to molten state with phosphorescence quenching at 350 K. Reversible phase and luminescent conversion was observed after cooling down for 15 s. Notably, M-2 exhibits green light emission similar to M-1 but undergoes phase conversion and phosphorescence quenching at 390 K, with reversible conversion observed after cooling down for 5 s. The photoluminescence switching mode of on(green)-off-on(green) can be achieved by temperature control, demonstrating excellent performance with short response times and ultra-high cyclic reversibility. By leveraging the different quenching temperatures and reversible PL conversion times of M-1 and M-2, we propose a spatial-time-dual-resolved photoluminescence (PL) switching system that combines M-1 and M-2. This system enables multi-fold tuning of the PL switch for encryption and decryption through cationic engineering strategies by modulating temperature and cooling time. This work presents a novel and feasible design strategy for advanced-level anti-counterfeiting technology based on a spatial-time-dual-resolved system.

摘要

尽管空间和时间分辨防伪技术因其出色的可调谐光致发光而受到越来越多的关注,但实现高安全级别的防伪仍然是一项挑战。在此,我们开发了一种时空双分辨防伪系统,该系统使用零维(0D)有机-无机Mn(II)金属卤化物:(EMMZ)MnBr(命名为M-1,EMMZ = 1-乙基-3-甲基咪唑溴化物)和(EDMMZ)MnBr(命名为M-2,EDMMZ = 1-乙基-2,3-二甲基咪唑溴化物)。M-1发出亮绿色光,量子产率为78%。它在350 K时从晶体状态转变为熔融状态,同时磷光猝灭。冷却15秒后观察到可逆的相变和发光转换。值得注意的是,M-2表现出与M-1类似的绿色发光,但在390 K时发生相变和磷光猝灭,冷却5秒后观察到可逆转换。通过温度控制可以实现开(绿色)-关-开(绿色)的光致发光切换模式,显示出具有短响应时间和超高循环可逆性的优异性能。通过利用M-1和M-2不同的猝灭温度和可逆PL转换时间,我们提出了一种结合M-1和M-2的时空双分辨光致发光(PL)切换系统。该系统通过阳离子工程策略,通过调节温度和冷却时间,实现了用于加密和解密的PL开关的多重调谐。这项工作提出了一种基于时空双分辨系统的高级防伪技术的新颖且可行的设计策略。

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