物理不可克隆功能
隧道磁电阻
硬件安全模块
密码学
材料科学
电压
计算机科学
汉明距离
物联网
纳米尺度
光电子学
纳米技术
电气工程
嵌入式系统
计算机硬件
工程类
算法
图层(电子)
作者
Yixin Shao,Noraica Dávila,Farbod Ebrahimi,J. A. Katine,Giovanni Finocchio,Pedram Khalili Amiri
标识
DOI:10.1002/aelm.202300195
摘要
Abstract With the fast growth of the number of electronic devices on the internet of things (IoT), hardware‐based security primitives such as physically unclonable functions (PUFs) have emerged to overcome the shortcomings of conventional software‐based cryptographic technology. Existing PUFs exploit manufacturing process variations in a semiconductor foundry technology. This results in a static challenge–response behavior, which can present a long‐term security risk. This study shows a reconfigurable PUF based on nanoscale magnetic tunnel junction (MTJ) arrays that uses stochastic dynamics induced by voltage‐controlled magnetic anisotropy (VCMA) for true random bit generation. A total of 100 PUF instances are implemented using 10 ns voltage pulses on a single chip with a 10 × 10 MTJ array. The unipolar nature of the VCMA mechanism is exploited to stabilize the MTJ state and eliminate bit errors during readout. All PUF instances show entropy close to one, inter‐Hamming distance close to 50%, and no bit errors in 10 4 repeated readout measurements.
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