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基于金纳米颗粒光热效应的物理不可克隆函数

Physical Unclonable Functions Based on Photothermal Effect of Gold Nanoparticles.

作者信息

Wang Zhiyuan, Wang Hu, Li Fenghua, Gao Xinyu, Shao Yuchuan

机构信息

Laboratory of Thin Film Optics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, P. R. China.

Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2024 Apr 10;16(14):17954-17964. doi: 10.1021/acsami.3c18270. Epub 2024 Apr 1.

DOI:10.1021/acsami.3c18270
PMID:38562008
Abstract

Physical unclonable functions (PUFs) based on uncontrollable fabrication randomness are promising candidates for anticounterfeiting applications. Currently, the most popular optical PUFs are generally constructed from the scattering, fluorescent, or Raman phenomenon of nanomaterials. To further improve the security level of optical PUFs, advanced functions transparent to the above optical phenomenon have always been perused by researchers. Herein, we propose a new type of PUF based on the photothermal effect of gold nanoparticles, which shows negligible scattering, fluorescent, or Raman responses. The gold nanoparticles are randomly dispersed onto the surface of fused silica, which can enhance the photothermal effect and facilitate high contrast responses. By tuning the areal density of the gold nanoparticles, the optimized encoding capacity (2) and the total authentication error probability (3.6428 × 10) are achieved from our PUF due to excellent bit uniformity (0.519) and inter Hamming distances (0.503). Moreover, the intra-Hamming distance (0.044) indicates the desired reliability. This advanced PUF with invisible features and high contrast responses provides a promising opportunity to implement authentication and identification with high security.

摘要

基于不可控制造随机性的物理不可克隆函数(PUF)是防伪应用的理想候选方案。目前,最流行的光学PUF通常由纳米材料的散射、荧光或拉曼现象构建而成。为了进一步提高光学PUF的安全级别,研究人员一直在探索对上述光学现象透明的先进功能。在此,我们提出了一种基于金纳米颗粒光热效应的新型PUF,其散射、荧光或拉曼响应可忽略不计。金纳米颗粒随机分散在熔融石英表面,可增强光热效应并促进高对比度响应。通过调整金纳米颗粒的面密度,由于出色的比特均匀性(0.519)和汉明间距(0.503),我们的PUF实现了优化的编码容量(2)和总认证错误概率(3.6428×10)。此外,汉明内距(0.044)表明了所需的可靠性。这种具有不可见特征和高对比度响应的先进PUF为实现高安全性的认证和识别提供了一个有前景的机会。

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