使用基于碳纳米管的物理不可克隆功能的新型数字安全电路专用混合信号表征和测试框架

Florian Frank, N. Anagnostopoulos, Simon Böttger, S. Hermann, T. Arul, S. Stavrinides, S. Katzenbeisser
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引用次数: 0

摘要

我们的工作提出了一种表征和测试方法,以及相关的自定义实现,用于测量使用基于纳米材料的物理不可克隆功能(puf)作为其安全锚点的新型数字安全电路。虽然在这项工作中,我们关注的是利用碳纳米管(CNT)电池的横条结构的电学特性的puf,但所提出的方法适用于大多数(如果不是全部)基于类似纳米材料横条结构的puf。我们的工作详细描述和讨论了相关的表征和测试框架,同时还提出了相应的混合信号电路实现,可用于以自动方式提供数字安全令牌。最后,还提出了有关所考虑的CNT puf的初步结果,以这种方式证明了所提出的框架用于这些puf的表征和测试的能力,以及用于在嵌入式系统和物联网(IoT)背景下实现安全应用的能力,一般使用基于纳米材料的puf。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Dedicated Mixed-Signal Characterisation and Testing Framework for Novel Digital Security Circuits That Use Carbon-Nanotube-Based Physical Unclonable Functions
Our work proposes a characterisation and testing methodology, as well as the relevant custom implementation, for measuring novel digital security circuits that use nanomaterial-based Physical Unclonable Functions (PUFs) as their security anchors. Although in this work we focus on PUFs that utilise the electrical characteristics of a crossbar structure of Carbon NanoTube (CNT) cells, the proposed methodology is applicable to most, if not all, PUFs that are based on similar crossbar structures of nanomaterials. Our work describes and discusses in detail the relevant characterisation and testing framework, while also presenting the corresponding mixed-signal circuit implementation, which can be utilised to provide a digital security token in an automated manner. Finally, preliminary results concerning the considered CNT PUFs are also presented, proving in this way the ability of the proposed framework to be utilised for the characterisation and testing of these PUFs, as well as for the implementation of security applications in the context of embedded systems and the Internet of Things (IoT), using nanomaterial-based PUFs in general.
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