Lee Soogil, Kang Jaimin, Kim Jeong-Mok, Kim Namhee, Han Donghyeon, Lee Taekhyeon, Ko San, Yang Jiseok, Lee Sanghwa, Lee Sungjun, Koh Daekyu, Kang Min-Gu, Lee Jisung, Noh Sujung, Lee Hansaem, Kwon JoonHyun, Baek Seung-Heon Chris, Kim Kab-Jin, Park Byong-Guk
Department of Materials Science and Engineering, KAIST, Daejeon, 34141, Korea.
Department of Physics, KAIST, Daejeon, 34141, Korea.
Adv Mater. 2022 Nov;34(45):e2203558. doi: 10.1002/adma.202203558. Epub 2022 Oct 17.
Physical unclonable function (PUFs) utilize inherent random physical variations of solid-state devices and are a core ingredient of hardware security primitives. PUFs promise more robust information security than that provided by the conventional software-based approaches. While silicon- and memristor-based PUFs are advancing, their reliability and scalability require further improvements. These are currently limited by output fluctuations and associated additional peripherals. Here, highly reliable spintronic PUFs that exploit field-free spin-orbit-torque switching in IrMn/CoFeB/Ta/CoFeB structures are demonstrated. It is shown that the stochastic switching polarity of the perpendicular magnetization of the top CoFeB can be achieved by manipulating the exchange bias directions of the bottom IrMn/CoFeB. This serves as an entropy source for the spintronic PUF, which is characterized by high entropy, uniqueness, reconfigurability, and digital output. Furthermore, the device ensures a zero bit-error-rate under repetitive operations and robustness against external magnetic fields, and offers scalable and energy-efficient device implementations.
物理不可克隆函数(PUF)利用固态设备固有的随机物理变化,是硬件安全原语的核心要素。与传统的基于软件的方法相比,PUF有望提供更强大的信息安全。虽然基于硅和忆阻器的PUF不断发展,但其可靠性和可扩展性仍需进一步提高。目前,它们受到输出波动和相关附加外围设备的限制。在此,展示了利用IrMn/CoFeB/Ta/CoFeB结构中无场自旋轨道扭矩切换的高度可靠的自旋电子PUF。结果表明,通过操纵底部IrMn/CoFeB的交换偏置方向,可以实现顶部CoFeB垂直磁化的随机切换极性。这作为自旋电子PUF的熵源,其特点是高熵、唯一性、可重构性和数字输出。此外,该器件在重复操作下确保零误码率,并对外部磁场具有鲁棒性,还提供可扩展且节能的器件实现方式。