Li Yan, Li Yang, Yang Jiaxin, Chen Ziyu, Feng Ming, Liu Lisa, Song Feng, Huang Wei
School of Physics and Key Laboratory of Weak Light Nonlinear Photonics, Ministry of Education, Nankai University, Tianjin 300071, People's Republic of China.
School of Electronic Information, Huzhou College, Huzhou, Zhejiang 313000, People's Republic of China.
ACS Appl Mater Interfaces. 2024 May 15;16(19):25256-25267. doi: 10.1021/acsami.4c01534. Epub 2024 May 4.
Inspired by the light and dark variations observed in natural cloud clusters under sunlight, we propose a three-dimensional (3D) "bionic" fluorescent physically unclonable function (PUF) label. The minimalist preparation process eliminates the need for expensive traditional instruments, thus offering new insight into the widespread adoption of 3D PUF labels. The Eu(CCA)(HO) powder, which is the first to propose its secondary building unit, was chosen as the fluorescent material. Its 3D morphology is preserved in the resin to mimic cloud-like structures. Furthermore, the luminescent properties are elucidated through experimental tests and first-principles calculations. To overcome the coding capacity limitation of traditional two-dimensional (2D) fluorescent PUF labels, a dual challenge-response system model is proposed. The shallow and deep models provide anticounterfeiting information from macro and micro perspectives, respectively. This successfully increases the encoding capacity from 2 to 2 for a 10 × 10 pixel binary code. Therefore, 3D "bionic" fluorescent PUF labels strike a balance between the simple usage of PUF labels and enhanced label security.
受阳光照射下自然云团中明暗变化的启发,我们提出了一种三维(3D)“仿生”荧光物理不可克隆功能(PUF)标签。极简的制备过程无需昂贵的传统仪器,从而为3D PUF标签的广泛应用提供了新的思路。首次提出其二级结构单元的Eu(CCA)(HO)粉末被选为荧光材料。其三维形态保留在树脂中以模仿云状结构。此外,通过实验测试和第一性原理计算阐明了发光特性。为克服传统二维(2D)荧光PUF标签的编码容量限制,提出了一种双挑战-响应系统模型。浅层和深层模型分别从宏观和微观角度提供防伪信息。对于10×10像素的二进制代码,这成功地将编码容量从2提高到了2。因此,3D“仿生”荧光PUF标签在PUF标签的简单使用和增强的标签安全性之间取得了平衡。