Viscoelasticity‐Controlled Relaxation in Wrinkling Surface for Multistage Time‐Resolved Optical Information Encryption

Author:

Feng Dengchong1,Guo Qi1,Huang Zhenjie1,Zhou Baiyang1,Gong Li2,Lu Shaolin34,Yang Yuzhao34ORCID,Yu Dingshan14,Zheng Zhikun134,Chen Xudong134

Affiliation:

1. Key Laboratory for Polymeric Composite and Functional Materials of Ministry of Education, Guangdong Engineering Technology Research Center for High‐Performance Organic and Polymer Photoelectric Functional Films School of Chemistry Sun Yat‐sen University Guangzhou 510275 China

2. Instrumental Analysis Research Center Sun Yat‐sen University Guangzhou 510275 China

3. School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou 510006 China

4. Guangdong Provincial Laboratory of Chemistry and Fine Chemical Engineering Jieyang Center Jieyang 515200 China

Abstract

AbstractAs counterfeit techniques continue to evolve, ensuring the security of conventional “static” encryption methods becomes increasingly challenging. Here, the viscoelasticity‐controlled relaxation is introduced for the first time in a bilayer wrinkling system by regulating the density of hydrogen bond networks in polymer to construct a “dynamic” encryption material. The wrinkling surface can manipulate light during the dynamic relaxation process, exhibiting three stages with frosted glass, structural color, and mirror reflection. By regulating the viscoelasticity of skin layer through UV irradiation, the wavelength and the relaxation rate of the wrinkles can be controlled. As a result, dynamic wrinkling anti‐counterfeiting patterns and time‐resolved multistage information encryption are achieved. Crucially, the encryption material is developed as an anti‐counterfeiting label for packing boxes in daily applications, allowing the encrypted information to be activated manually and identified by naked eyes, surpassing the existing time‐resolved encryption materials in utilization potential. Besides, the dynamic hydrogen bond networks are extended to various dynamic interaction networks, demonstrating the versatility of the dynamic encryption strategy. This work not only provides an additional dimension for dynamic information encryption in daily practical use, but also offers theoretical guidance for the development of advanced optical anti‐counterfeiting and smart display materials in the future.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

Wiley

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