物理
定时器
控制理论(社会学)
休克(循环)
触电
计算机科学
机械
材料科学
加速度
区间(图论)
作者
Ehab A. Hamed,Inhee Lee
标识
DOI:10.1109/tvlsi.2026.3695454
摘要
Precision timing is a fundamental requirement for ultralow-power Internet-of-Things (IoT) nodes, wildlife trackers, and wearable health devices. However, maintaining accuracy in these severely power-constrained systems is difficult due to the mechanical shock sensitivity of crystal oscillators (XOs). This work proposes a ratio wake-up timer (Ratio-WUT) designed to enhance XO shock resilience with very low power overhead. The system integrates a 5.58 nW XO with a secondary ultralow-power auxiliary oscillator (AuxO). A 1.75 nW digital controller actively monitors the ratio between XO and AuxO cycles, triggering an autonomous restart sequence immediately upon detecting an XO failure. Unlike conventional hybrid timers that rely on periodic wake-up checks, the Ratio-WUT provides continuous, real-time fault detection and correction. The prototype features a custom 180 nm CMOS XO and subthreshold AuxO, with control logic validated on an FPGA. Detailed postlayout analysis of a fully integrated version estimates a total power consumption of 7.33 nW. Experimental validation confirms the system’s ability to recover from mechanical shock events in real-time while maintaining wake-up functionality. By leveraging the inherent stability of the XO for timing while using the AuxO for supervision, the Ratio-WUT achieves a$3.85\times $power reduction compared to prior hybrid architectures.
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