English

A Hardware-Based Multi-Stage Dynamic Power Management Architecture for Autonomous Low-Light Operation

Hardware Architecture 2026-05-20 v1

Abstract

The advance of autonomous Smart Sensor Networks and embedded systems for the Internet of Things, powered by photovoltaic energy harvesting, is severely limited by energy efficiency, especially in low-light environments. While Dynamic Power Management is essential for energy conservation, conventional software-based techniques that rely on processor-managed low-power states incur a persistent quiescent current drain. This current becomes the dominant energy sink in energy-scarce conditions, limiting autonomy. The work of this paper addresses this limitation by introducing a robust, hardware-orchestrated dynamic power management architecture that improves existing configurations for battery-based sensor nodes. The proposed architecture achieves a minimal quiescent drain of 452nA, by completely power-gating the microcontroller and all non-essential peripherals, with wake-up orchestrated by an ultra-low-power PMIC, RTC and a novel latch circuit developed specifically for this work. Our evaluation demonstrates that the dynamic power management architecture is significantly more efficient than traditional software-based sleep modes.

Keywords

Cite

@article{arxiv.2605.19879,
  title  = {A Hardware-Based Multi-Stage Dynamic Power Management Architecture for Autonomous Low-Light Operation},
  author = {Charalampos S. Kouzinopoulos and Marcel L. Meli and Martin Schellenberg and Philip J. Poole and Mathieu Bellanger and Matthias Kauer and Julien De Vos and Dimosthenis Ioannidis and Dimitrios Tzovaras},
  journal= {arXiv preprint arXiv:2605.19879},
  year   = {2026}
}

Comments

Accepted for publication at IEEE/ACM International Symposium on Low Power Electronics and Design, ISLPED 2026

R2 v1 2026-07-22T07:21:49.929Z