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Hybrid low-voltage physical unclonable function based on inkjet-printed metal-oxide transistors

机译:基于喷墨印刷金属氧化物晶体管的混合低压物理不可渗透功能

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Modern society is striving for digital connectivity that demands information security. As an emerging technology, printed electronics is a key enabler for novel device types with free form factors, customizability, and the potential for large-area fabrication while being seamlessly integrated into our everyday environment. At present, information security is mainly based on software algorithms that use pseudo random numbers. In this regard, hardware-intrinsic security primitives, such as physical unclonable functions, are very promising to provide inherent security features comparable to biometrical data. Device-specific, random intrinsic variations are exploited to generate unique secure identifiers. Here, we introduce a hybrid physical unclonable function, combining silicon and printed electronics technologies, based on metal oxide thin film devices. Our system exploits the inherent randomness of printed materials due to surface roughness, film morphology and the resulting electrical characteristics. The security primitive provides high intrinsic variation, is non-volatile, scalable and exhibits nearly ideal uniqueness. Designing efficient system for digital connectivity preserving information security remains a challenge. Here, the authors present hardware-intrinsic security solutions based on physical unclonable functions incorporating an inkjet-printed core circuit as an intrinsic source of entropy, integrated into a silicon-based CMOS system environment.
机译:现代社会正在努力争取要求信息安全的数字连接。作为新兴技术,印刷电子产品是一种用于新颖的设备类型的关键推动因子,具有自由形式因素,可定制性和大面积制造的潜力,同时无缝地集成到我们的日常环境中。目前,信息安全主要基于使用伪随机数的软件算法。在这方面,硬件内在安全基元(例如物理不可渗透功能)非常有希望提供与生物数据数据相当的固有安全功能。特定于设备的随机内部变体​​被利用以生成唯一的安全标识符。在这里,我们介绍了一种基于金属氧化物薄膜装置的混合物理不可渗透功能,组合硅和印刷电子技术。我们的系统由于表面粗糙度,薄膜形态和所得到的电气特性而利用印刷材料的固有随机性。安全原语提供高固有变化,是不挥发性的,可扩展的,呈现几乎理想的唯一性。设计高效的数字连接系统保存信息安全仍然是一个挑战。在这里,作者呈现了基于物理不可渗透功能的硬件内在安全解决方案,其包含喷墨印刷的核心电路作为内在熵的内在源,集成到基于硅的CMOS系统环境中。

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