材料科学
物理不可克隆功能
钥匙(锁)
密钥生成
加密
卤化物
二进制数
编码(内存)
光电子学
计算机科学
纳米技术
计算机网络
人工智能
计算机安全
算术
无机化学
数学
化学
作者
Xinyu Gao,Hu Wang,Hongxing Dong,Jianda Shao,Yuchuan Shao,Long Zhang
标识
DOI:10.1021/acsami.3c02193
摘要
Optical physical unclonable functions (PUFs) have been considered as an effective tool for anti-counterfeiting owing to the uncontrollable manufacturing process and excellent resistance to machine-learning attacks. However, most optical PUFs exhibit fixed challenge-response pairs and static encoding structures after they are manufactured, which significantly impedes the actual development. Herein, we propose a tunable key-size PUF based on reversible phase segregation in mixed halide perovskites with uncontrollable Br/I ratios under variable power densities. The basic performance of encryption keys of low and high power density was evaluated and indicated a high degree of uniformity, uniqueness, and readout repeatability. Merging the binary keys of low and high power density, tunable key-size PUF is realized with higher security. The proposed tunable key-size PUF offers new insights into the development of dynamic-structure PUFs and demonstrates a novel scheme for achieving higher security of anti-counterfeiting and authentication.
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