Jinyue Xie, Shiyu Deng, Fei Liang, Huan Tang, Kang Zhang, Yunyue Zhang, Ming Feng, Feng Song, Wei Huang
With growing demand for secure information storage and authentication, integrating static physical fingerprints with dynamic rewritable information within a single carrier remains a challenge. This study proposes a multilevel anti-counterfeiting strategy based on biomimetic microtextured polymer hydrogels (MTPHs). Soft replication of feather-derived microhooks transfers hierarchical biomimetic microtextures into photocurable hydrogels, where local biological variations and replication-induced microvariations serve as physical entropy sources for PUF authentication. Incorporating the photochromic unit Mo7 into the network endows the material with rewritable photochromic properties and enables a burn-after-use security function. Dual-mode fluorescence encoding is further engineered through lanthanide ion doping, enabling orthogonal information display under visible and UV excitation. By combining rewritable photochromism, dual-mode fluorescence, PUF microtextures, and VGG-based texture classification, the system enables hierarchical authentication across macroscopic texture classification, mesoscopic dynamic information readout, and microscopic PUF fingerprint verification. As a proof of concept, smart admission tickets are demonstrated for access control, zone classification, and identity verification. This work provides an integrated material and authentication platform for multilevel anti-counterfeiting and IoT-oriented secure identification.