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用于二维/三维打印信息加密的具有三重动态键的荧光自修复弹性体

Fluorescent Self-Healing Elastomers with Triple Dynamic Bonds for 2D/3D Printed Information Encryption.

作者信息

Yang Dai, Tian Qingyong, Li Jingyang, Sui Xiaoqing, Liu Shuiren, Hu Xiaoguang, Sun Qingqing, Zhang Linlin, Niu Mingjun, Liu Xuying, Yao Weijing

机构信息

School of Materials Science and Engineering Henan Institute of Advanced Technology Zhengzhou University Zhengzhou 450001 P. R. China.

出版信息

Small Sci. 2025 Jul 30;5(9):2500091. doi: 10.1002/smsc.202500091. eCollection 2025 Sep.

Abstract

The development of novel optical self-healing materials holds significant importance for applications in anticounterfeiting and information encryption, but remains a formidable challenge. This study presents a fluorescent self-healing material designed for 2D/3D printing anticounterfeiting applications, exhibiting outstanding properties such as high transmittance, excellent mechanical strength, and remarkable self-healing efficiency. The triple dynamic bond networks provide robust mechanical and self-healing capabilities, with the polymer demonstrating a tensile strength of 26.9 MPa, an elongation at break of 1400%, toughness of 149.4 MJ m, and a self-healing efficiency of 97%. When incorporated with core-shell nanoparticles, the polymer forms a fluorescent elastomer capable of triple-mode up/down conversion fluorescence emission. This material can be easily customized via 2D/3D printing to create the desired shapes, and its self-healing property allows for the combination of various configurations, thereby facilitating the encryption of multiple information applications. This study presents an effective protocol for synthesizing fluorescent self-healing materials, further advancing their potentials for use in information encryption and fluorescence-based anti-counterfeiting.

摘要

新型光学自修复材料的开发对于防伪和信息加密应用具有重要意义,但仍然是一项艰巨的挑战。本研究提出了一种用于二维/三维打印防伪应用的荧光自修复材料,该材料具有高透光率、优异的机械强度和显著的自修复效率等突出性能。三重动态键网络提供了强大的机械和自修复能力,该聚合物的拉伸强度为26.9兆帕,断裂伸长率为1400%,韧性为149.4兆焦/立方米,自修复效率为97%。当与核壳纳米粒子结合时,该聚合物形成一种能够进行三模式上/下转换荧光发射的荧光弹性体。这种材料可以通过二维/三维打印轻松定制以创建所需形状,并且其自修复特性允许组合各种配置,从而便于加密多种信息应用。本研究提出了一种合成荧光自修复材料的有效方案,进一步提升了它们在信息加密和基于荧光的防伪方面的应用潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c0b2/12412527/ff133cd56b5d/SMSC-5-2500091-g002.jpg

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