9.3 A680 μw Burst-Chirp UWB Radar Transceiver for Vital Signs and Occupancy Sensing up to 15m Distance

Conference Paper (2019)
Author(s)

Yao-Hong Liu (IMEC Nederland)

Sunil Sheelavant (IMEC Nederland, Student TU Delft)

Marco Mercuri (IMEC Nederland)

Paul Mateman (IMEC Nederland)

Johan Dijkhuis (IMEC Nederland)

Wilfried Zomagboguelou (Eindhoven University of Technology, IMEC Nederland)

Arjan Breeschoten (IMEC Nederland)

Stefano Traferro (IMEC Nederland)

Masoud Babaie (TU Delft - Electrical Engineering, Mathematics and Computer Science)

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Research Group
Electronics
DOI related publication
https://doi.org/10.1109/ISSCC.2019.8662536 Final published version
More Info
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Publication Year
2019
Language
English
Research Group
Electronics
Article number
8662536
Pages (from-to)
166-168
ISBN (print)
978-1-5386-8532-7
ISBN (electronic)
978-1-5386-8531-0
Event
ISSCC 2019 (2019-02-17 - 2019-02-21), San Francisco, CA, United States
Downloads counter
335

Abstract

For remote vital signs and occupancy detection in many smart home/building applications, radar sensors are a preferred option over cameras, due to privacy preservation and robustness to ambient light conditions. These radars not only need to provide precise range and vital signs information over meters distance, but also preferably can operate on a battery up to a few months or even years, for cost and practical reasons (like smoke detectors). State-of-the-art remote vital-sign sensors typically use an impulse-radio UWB (IR-UWB) radar [1,2] because it provides a range resolution <20 cm. However, their power consumption is typically in the order of 100's of mW, preventing long-term maintenance-free battery-powered operations. Although mains power can be used to supply such radars, this is not always available, depending on the location and the building type, and the installation cost (e.g., power routing) is significantly higher than for battery-powered ones. In this work, a burst-chirp radar with an energy-efficient chirp generation is proposed, leading to a record-low power consumption of 680 μW.