物理不可克隆功能
密码学
控制重构
密码原语
计算机科学
加密
材料科学
密码协议
纳米技术
嵌入式系统
计算机安全
算法
作者
Youngchan Kim,Jaemook Lim,Ji Hwan Lim,Eunseung Hwang,Hyunkoo Lee,Minwoo Kim,Inho Ha,Hyunmin Cho,Jinhyeong Kwon,Junho Oh,Seung Hwan Ko,Heng Pan,Sukjoon Hong
标识
DOI:10.1002/adma.202212294
摘要
Physical unclonable functions (PUFs) are emerging as an alternative to information security by providing an advanced level of cryptographic keys with non-replicable characteristics, yet the cryptographic keys of conventional PUFs are not reconfigurable from the ones assigned at the manufacturing stage and the overall authentication process slows down as the number of entities in the dataset or the length of cryptographic key increases. Herein, a supersaturated solution-based PUF (S-PUF) is presented that utilizes stochastic crystallization of a supersaturated sodium acetate solution to allow a time-efficient, hierarchical authentication process together with on-demand rewritability of cryptographic keys. By controlling the orientation and the average grain size of the sodium acetate crystals via a spatiotemporally programmed temperature profile, the S-PUF now includes two global parameters, that is, angle of rotation and divergence of the diffracted beam, in addition to the speckle pattern to produce multilevel cryptographic keys, and these parameters function as prefixes for the classification of each entity for a fast authentication process. At the same time, the reversible phase change of sodium acetate enables repeated reconfiguration of the cryptographic key, which is expected to offer new possibilities for a next-generation, recyclable anti-counterfeiting platform.
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