认证(法律)
物理不可克隆功能
鉴定(生物学)
纳米尺度
共聚物
雕刻
生物识别
块(置换群论)
计算机科学
材料科学
纳米技术
计算机安全
密码学
聚合物
生物
复合材料
数学
植物
几何学
作者
Irdi Murataj,Chiara Magosso,Stefano Carignano,Matteo Fretto,Federico Ferrarese Lupi,Gianluca Milano
标识
DOI:10.1038/s41467-024-54492-8
摘要
Besides causing financial losses and damage to the brand's reputation, counterfeiting can threaten the health system and global security. In this context, physical unclonable functions (PUFs) have been proposed to overcome limitations of current anti-counterfeiting technologies. Here, we report on artificial fingerprints that can be directly engraved on a wide range of substrates through self-assembled block-copolymer templating as nanoscale PUFs for secure authentication and identification. Results show that morphological features can be exploited to encode fingerprint-like nanopatterns in binary code matrices representing a unique bit stream of information characterized by high uniqueness and entropy. A strategy based on computer vision concepts for authentication/identification in real-world scenarios is reported. Long-term reliable operation and robust authentication/identification against thermal treatment at cryogenic and high temperatures of the PUF have been demonstrated. These results pave the way for the realization of PUFs embracing the inherent stochasticity of self-assembled materials at the nanoscale.
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