Information security is of great importance for modern society with all things connected. Physical unclonable function (PUF) as a promising hardware primitive has been intensively studied for information security. However, the widely investigated silicon PUF with low entropy is vulnerable to various attacks. Herein, we introduce a concept of bionic optical PUFs inspired from unique biological architectures, and fabricate four types of bionic PUFs by molding the surface micro-nano structures of natural plant tissues with a simple, low-cost, green and environmentally friendly manufacturing process. The laser speckle responses of all bionic PUFs are statistically demonstrated to be random, unique, unpredictable and robust enough for cryptographic applications, indicating the broad applicability of bionic PUFs. On this ground, the feasibility of implementing bionic PUFs as cryptographic primitives in entity authentication and encrypted communication is experimentally validated, which shows its promising potential in the application of future information security.
翻译:对现代社会而言,信息安全非常重要。物理上不可调和的功能(PUF)作为有希望的硬件原始体,已经为信息安全进行了深入研究。然而,经过广泛调查的具有低温英属的硅基聚氨酯泡沫很容易受到各种攻击。在这里,我们引入了一种由独特的生物结构所启发的生物光学聚氨酯泡沫概念,并通过将天然植物组织表面微氮结构造型成简单、低成本、绿色和环保的生产过程,将四种生物体组织表面微氮结构构成结构。所有生物体聚氨酯的激光光斑反应在统计上证明是随机的、独特的、不可预测的和强大的,足以用于加密应用,表明生物体聚氨酯泡沫的广泛适用性。在这方面,在实体认证和加密通信中,将生物体液化聚氨酯作为加密原始体的可行性得到了实验性验证,这显示了其在应用未来信息安全方面的大有潜力。