基于纳米和薄膜结构的光学安全与认证

IF 25.2 1区 物理与天体物理 Q1 OPTICS Advances in Optics and Photonics Pub Date : 2017-06-30 DOI:10.1364/AOP.9.000218
A. Carnicer, B. Javidi
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引用次数: 34

摘要

编码信息的认证是当前光学安全领域的一个流行趋势。最近的研究提出,使用纳米级编码和薄膜沉积制造技术生产安全的不可克隆ID标签和设备,这些技术几乎不可能伪造,但可以使用光学和光子学仪器进行验证。目前的光学加密程序提供了对信息的安全访问,并且这些技术每天都在改进。然而,有权访问解密密钥的合法接收者可能无法验证消息的真实性。换句话说,没有简单的方法来检查这些信息是否被伪造。金属纳米颗粒可以用于制造过程,因为它们提供了可用于验证的独特极化特征。数据在光学域中编码,可以通过散斑分析或椭圆偏振法使用物理特性进行验证。从假样本和真样本中获得的信号很复杂,很难区分。因此,需要机器学习分类算法来确定编码数据的真实性,并验证不可克隆的纳米颗粒编码或基于薄膜的ID标签的安全性。在这篇论文中,我们回顾了最近使用纳米结构、薄膜和3D光学代码对消息、ID标签和代码进行光学验证的研究。我们分析了光学编码设备必须进行身份验证的几种情况。验证需要在光学和统计技术中结合使用各种多学科方法,因此,本文的前五部分被组织为教程。
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Optical security and authentication using nanoscale and thin-film structures
Authentication of encoded information is a popular current trend in optical security. Recent research has proposed the production of secure unclonable ID tags and devices with the use of nanoscale encoding and thin-film deposition fabrication techniques, which are nearly impossible to counterfeit but can be verified using optics and photonics instruments. Present procedures in optical encryption provide secure access to the information, and these techniques are improving daily. Nevertheless, a rightful recipient with access to the decryption key may not be able to validate the authenticity of the message. In other words, there is no simple way to check whether the information has been counterfeited. Metallic nanoparticles may be used in the fabrication process because they provide distinctive polarimetric signatures that can be used for validation. The data is encoded in the optical domain, which can be verified using physical properties with speckle analysis or ellipsometry. Signals obtained from fake and genuine samples are complex and can be difficult to distinguish. For this reason, machine-learning classification algorithms are required in order to determine the authenticity of the encoded data and verify the security of unclonable nanoparticle encoded or thin-film-based ID tags. In this paper, we review recent research on optical validation of messages, ID tags, and codes using nanostructures, thin films, and 3D optical codes. We analyze several case scenarios where optically encoded devices have to be authenticated. Validation requires the combined use of a variety of multi-disciplinary approaches in optical and statistical techniques, and for this reason, the first five sections of this paper are organized as a tutorial.
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来源期刊
CiteScore
56.60
自引率
0.00%
发文量
13
期刊介绍: Advances in Optics and Photonics (AOP) is an all-electronic journal that publishes comprehensive review articles and multimedia tutorials. It is suitable for students, researchers, faculty, business professionals, and engineers interested in optics and photonics. The content of the journal covers advancements in these fields, ranging from fundamental science to engineering applications. The journal aims to capture the most significant developments in optics and photonics. It achieves this through long review articles and comprehensive tutorials written by prominent and respected authors who are at the forefront of their fields. The journal goes beyond traditional text-based articles by enhancing the content with multimedia elements, such as animation and video. This multimedia approach helps to enhance the understanding and visualization of complex concepts. AOP offers dedicated article preparation and peer-review support to assist authors throughout the publication process. This support ensures that the articles meet the journal's standards and are well-received by readers. Additionally, AOP welcomes comments on published review articles, encouraging further discussions and insights from the scientific community. In summary, Advances in Optics and Photonics is a comprehensive journal that provides authoritative and accessible content on advancements in optics and photonics. With its diverse range of articles, multimedia enhancements, and dedicated support, AOP serves as a valuable resource for professionals and researchers in these fields.
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