Physically unclonable functions (PUFs) are a promising solution for anticounterfeiting technologies. However, their mass implementation is limited by fabrication complexity and/or special materials demands, as well as specialized authentication. To overcome these issues, a scalable and sustainable approach for fabricating optical PUF labels is proposed in this work. The approach is based on direct laser metallization (DLM) of deep eutectic solvents on flexible polyimide substrates. The laser-induced reduction of copper precursors produces microstructures made by specially designed templates with stochastic edge morphologies serving as unique unclonable identifiers. A computer vision-based authentication algorithm enables robust recognition, achieving an encoding capacity exceeding 10465. The created labels can be authenticated using standard microscopes or consumer smartphones with macro lenses. Additionally, created labels were tested for stability and unauthorized copying. The replication attempts using 1200 dpi laser printing reproduced macroscopic outlines but failed to mimic microscopic features, confirming their unclonability. The fabricated labels remain functional after exposure to running water and heating up to 200°C, demonstrating excellent environmental durability. Due to its flexibility, scalability, and low-cost eco-friendly processing, the proposed label design is well suited for integration into flexible and wearable microelectronic systems, providing a practical solution to next-generation anticounterfeit technologies.
The concealing of uniquely identifiable information is pertinent to both anti-counterfeiting and information security technologies. Current optical physically unclonable functions (PUFs) are based on static stochastic features that make them inherently vulnerable to undesired tampering. This study proposes wetting indu...
Ilker Torun, Cemile Janset Cakar, N. B. Kiremitler et al.· Small· 0 citations
Traditional static optical anti-counterfeiting relies on fixed luminescent patterns or a single optical response, making it susceptible to copying and counterfeiting; moreover, its mode of information presentation is singular, making it difficult to meet the demands of information encryption with high concealment and h...
Meng-Lu Li, Jian-Qiang Xiao, Kai Yin et al.· Applied Physics Letters· 1 citation
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...
Jin-Yue Xie, Shi-Yu Deng, Fei Liang et al.· ACS Applied Materials and In...· 0 citations