Yong Tian, Baoyu Huang, Shun He, Yi Zhao, Kairong Zang, Hong Wang, Xiaomei Zhao, Jiaxi Cui, Jian Chen
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引用次数: 0
摘要
要满足日益增长的保密需求,开发具有高安全性的可重写信息加密技术至关重要,但这仍然具有挑战性。因此,我们开发了一种利用自生长技术和主客体相互作用来构建可重写光开关超分子荧光聚合物(PSFP)的策略,从而实现可重写信息加密。在这一策略中,利用自生长方法将可聚合金刚烷(AD)集成到聚合物材料中,从而在基体表面形成所需的三维结构。通过 AD 单元与 β-环糊精(β-CD)分子之间的主客体相互作用,β-环糊精(CDPA 和 CDNA)修饰的荧光染料和光致变色螺吡喃连接的 β-环糊精(CDSP)被整合到生长结构中。基于光诱导荧光共振能量转移(FRET)过程,PSFP 可在蓝/绿和红色之间进行可逆的双态荧光切换。有趣的是,由于主客体相互作用的动态特性,荧光信息很容易被擦除和重写。这些出色的性能推动了 PSFP 在可重写信息加密和防伪标签方面的应用。总之,这种策略为智能光开关荧光材料开辟了新的前景。
Reprogrammable Supramolecular Fluorescent Polymers for Rewritable Information Encryption and Anti-Counterfeiting
The development of rewritable information encryption technology with high security is essential to meet the increasing confidentiality needs, however, it remains challenging. Hence, a strategy using self-growth technology and host–guest interaction to construct reprogrammable photoswitchable supramolecular fluorescent polymers (PSFP) is developed, enabling rewritable information encryption. In this strategy, the polymerizable adamantane (AD) is integrated into polymer materials by employing the self-growth method to create the desired 3D structure on the surface of the matrix. The fluorescent dyes modified by β-cyclodextrin (CDPA and CDNA) and photochromic spiropyran-linked β-cyclodextrin (CDSP) are incorporated into the growing structure through host–guest interactions between AD unit and β-cyclodextrin (β-CD) moieties. Based on the photo-induced fluorescence resonance energy transfer (FRET) process, PSFP can undergo reversible dual-state fluorescence switching between blue/green and red. Interestingly, owing to the dynamic features of host–guest interactions, the fluorescent information can be erased and rewritten easily. These outstanding performances promote to apply PSFP to rewritable information encryption and anti-counterfeiting labels. Overall, this strategy opens up new prospects for smart photoswitchable fluorescent materials.
期刊介绍:
Firmly established as a top-tier materials science journal, Advanced Functional Materials reports breakthrough research in all aspects of materials science, including nanotechnology, chemistry, physics, and biology every week.
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