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光谱物理不可克隆函数:利用多共振混合粒子降低随机性

Spectral physical unclonable functions: downscaling randomness with multi-resonant hybrid particles.

作者信息

Sandomirskii Martin, Petrova Elena, Kustov Pavel, Chizhov Lev, Larin Artem, Bruyère Stéphanie, Yaroshenko Vitaly, Ageev Eduard, Belov Pavel, Zuev Dmitry

机构信息

School of Physics and Engineering, Faculty of Physics, ITMO University, St. Petersburg, Russia.

Université de Lorraine, CNRS, IJL, F-54000, Nancy, France.

出版信息

Nat Commun. 2025 Jun 2;16(1):5097. doi: 10.1038/s41467-025-60121-9.

Abstract

Optical physical unclonable functions (PUFs) are state-of-the-art in advanced security applications. Fabricated with inherent randomness, they generate fingerprint-like responses, serving as trust anchors for material assets. However, the existing PUFs, typically reliant on microscopic spatial features, face increasing threats from rapidly advancing microscale manipulation techniques. Here, we present novel PUFs based on random nanoscale variations within multi-resonant gold-silicon particles. These inevitable structural differences, coupled with strong optical resonances, provide unique spectral features in particles' photoluminescence (PL), which we encode as unclonable keys. Our approach surpasses the shortcomings of diffraction-limited designs, additionally offering a multi-functional platform for robust authentication of goods and verification of individuals. We demonstrate two security label models based on PL mapping and direct PL imaging, as well as a concept for the first all-optical one-time password verification token with an exceptionally high storage density of unique information. This work paves the way toward nanoscale-enabled unclonability, bringing enhanced security for hardware-based cryptography, personalized access control, and cutting-edge anti-counterfeiting.

摘要

光学物理不可克隆功能(PUF)在先进安全应用中处于领先水平。由于其固有随机性,PUF生成类似指纹的响应,作为物质资产的信任锚点。然而,现有的PUF通常依赖微观空间特征,正面临来自快速发展的微观操纵技术日益增加的威胁。在此,我们展示了基于多共振金硅颗粒内随机纳米级变化的新型PUF。这些不可避免的结构差异,再加上强烈的光学共振,在颗粒的光致发光(PL)中提供独特的光谱特征,我们将其编码为不可克隆的密钥。我们的方法克服了衍射极限设计的缺点,还为商品的可靠认证和个人身份验证提供了一个多功能平台。我们展示了基于PL映射和直接PL成像的两种安全标签模型,以及首个具有极高独特信息存储密度的全光一次性密码验证令牌的概念。这项工作为实现纳米级不可克隆性铺平了道路,为基于硬件的密码学、个性化访问控制和前沿防伪带来了更高的安全性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f270/12130527/bf49db9d9cf3/41467_2025_60121_Fig1_HTML.jpg

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