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用于防伪的基于丝蛋白的微激光阵列中的随机诱导相变

Randomly Induced Phase Transformation in Silk Protein-Based Microlaser Arrays for Anticounterfeiting.

作者信息

Fan Yuqing, Zhang Chunhuan, Gao Zhenhua, Zhou Wu, Hou Yue, Zhou Zhonghao, Yao Jiannian, Zhao Yong Sheng

机构信息

Key Laboratory of Photochemistry, Institute of Chemistry, Chinese Academy of Sciences, Beijing, 100190, China.

School of Chemical Sciences, University of Chinese Academy of Sciences, Beijing, 100049, China.

出版信息

Adv Mater. 2021 Oct;33(42):e2102586. doi: 10.1002/adma.202102586. Epub 2021 Sep 3.

DOI:10.1002/adma.202102586
PMID:34477249
Abstract

Anticounterfeiting labels based on physical unclonable functions (PUFs) exhibit high security with unreplicable code outputs, making them an ideal platform to realize unbreakable anticounterfeiting. Although various schemes are proposed for PUF labels, the utilization of natural randomness suffers from unpredictable signal extraction sites, which poses a challenge to efficient and convenient authentication for practical anticounterfeiting applications. Here, a covert optical PUF-based cryptographic protocol from silk protein-based microlaser (SML) arrays that possess hidden randomness of lasers for unclonable lasing signals as well as a defined location for efficient identification is proposed. The initial SMLs are patterned by casting laser dye-doped regenerated silk fibroin solution, resulting in a uniform microlaser array with regulated positions. With the SML array as substrate, random methanol microdroplets are stochastically sprayed on the SML array, which eventually induces uneven lasing signal changes of the patterned microlasers. The treated SML array possesses the deterministic readout sites of laser signals and unrepeatable signal distribution characteristics, which can guarantee efficient authentication and high security when serving as an anticounterfeiting label.

摘要

基于物理不可克隆功能(PUF)的防伪标签具有不可复制的代码输出,展现出高安全性,使其成为实现牢不可破防伪功能的理想平台。尽管针对PUF标签提出了各种方案,但利用自然随机性存在信号提取位置不可预测的问题,这对实际防伪应用中的高效便捷认证构成了挑战。在此,提出了一种基于隐蔽光学PUF的加密协议,该协议来自基于丝蛋白的微激光(SML)阵列,该阵列具有用于不可克隆激光信号的隐藏激光随机性以及用于高效识别的确定位置。初始的SML通过浇铸掺杂激光染料的再生丝素蛋白溶液进行图案化,从而形成具有规则位置的均匀微激光阵列。以SML阵列为基底,将随机的甲醇微滴随机喷洒在SML阵列上,最终导致图案化微激光的激光信号发生不均匀变化。经过处理的SML阵列具有激光信号的确定性读出位置和不可重复的信号分布特征,当用作防伪标签时,可确保高效认证和高安全性。

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