Bio‐Inspired Unclonable Anti‐Counterfeiting Based on Random Patterns of Colloidal Crystal Flakes

ABSTRACT Inspired by the random, colorful Turing patterns on the wings of the butterfly ( Papilio paris Linnaeus), unclonable anti‐counterfeiting based on interspersed structural colors has been developed by randomly dispersing colloidal crystal flakes (CCFs) into a functional polymeric matrix. The tiny shining CCFs exhibit irregular shapes, random sizes, stochastic distributions, and a rich variety of color hues, which together provide strong visual distinctiveness and high encoding capacity—key attributes for physical unclonable functions (PUFs). The PUF features—uniform bit uniformity, high randomness, and high uniqueness—are verified through both static and dynamic digital encoding. Angle‐dependence and tunable structural colors in response to solvents could provide preliminary anti‐counterfeiting modes, defending against printed replica attacks and allowing PUF labels without relying on high‐resolution. Furthermore, by selecting diverse polymeric matrices, a range of on‐demand functions can be integrated, including excellent mechanical properties, good stability, self‐healing, adhesion, and hydrophobicity, all of which facilitate practical security applications. To assess authentication reliability, deep learning demonstrates high accuracy (up to 100%) with rapid processing time (within seconds). Our approach integrates convenient fabrication, automatic & accurate authentication, and customizable functions, positioning it as a promising solution for advanced anti‐counterfeiting in high‐value goods.

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Publication Details

Journal
Advanced Optical Materials
Published
2026-09-30
DOI
https://doi.org/10.1002/adom.71886
Primary Topic
Physical Unclonable Functions (PUFs) and Hardware Security
Type
article
Field-Weighted Citation Impact
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Bio‐Inspired Unclonable Anti‐Counterfeiting Based on Random Patterns of Colloidal Crystal Flakes

Pan Jia, Jinming Zhou, Jingjiu Song, Na Wu et al.
Advanced Optical Materials
Physical Unclonable Functions (PUFs) and Hardware Security
article

Bio‐Inspired Unclonable Anti‐Counterfeiting Based on Random Patterns of Colloidal Crystal Flakes

Pan Jia, Jinming Zhou, Jingjiu Song, Na Wu, 刘知为, Yanlin Song, Zhenhua Wang, Lunyuan Zhang, Xin Zhang, Guofu Zhang
article en

Abstract

ABSTRACT Inspired by the random, colorful Turing patterns on the wings of the butterfly ( Papilio paris Linnaeus), unclonable anti‐counterfeiting based on interspersed structural colors has been developed by randomly dispersing colloidal crystal flakes (CCFs) into a functional polymeric matrix. The tiny shining CCFs exhibit irregular shapes, random sizes, stochastic distributions, and a rich variety of color hues, which together provide strong visual distinctiveness and high encoding capacity—key attributes for physical unclonable functions (PUFs). The PUF features—uniform bit uniformity, high randomness, and high uniqueness—are verified through both static and dynamic digital encoding. Angle‐dependence and tunable structural colors in response to solvents could provide preliminary anti‐counterfeiting modes, defending against printed replica attacks and allowing PUF labels without relying on high‐resolution. Furthermore, by selecting diverse polymeric matrices, a range of on‐demand functions can be integrated, including excellent mechanical properties, good stability, self‐healing, adhesion, and hydrophobicity, all of which facilitate practical security applications. To assess authentication reliability, deep learning demonstrates high accuracy (up to 100%) with rapid processing time (within seconds). Our approach integrates convenient fabrication, automatic & accurate authentication, and customizable functions, positioning it as a promising solution for advanced anti‐counterfeiting in high‐value goods.

Advanced Optical Materials
Shandong Institute of Automation (CN), Beijing Solar Energy Research Institute (CN), China Academy of Printing Technology (CN), Institute of Automation (CN), Hebei Normal University (CN)
Openalex Percentile: Top 6%
Physical Unclonable Functions (PUFs) and Hardware Security
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