4.7 Article

Low-Power Gas Sensing Using Single Walled Carbon Nano Tubes in Wearable Devices

期刊

IEEE SENSORS JOURNAL
卷 16, 期 23, 页码 8329-8337

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/JSEN.2016.2606087

关键词

Energy management; gas sensor; metal oxide semiconductor; nano tube gas sensor; wireless sensor network; wearable devices

资金

  1. Enhancing Research and Development of Energy-Efficient Networked Sensor Systems in South Eastern Europe [IZ74Z0 160481]
  2. EuroCPS Project a Horizon Project [644090]
  3. Swiss National Science Foundation (SNF) [IZ74Z0_160481] Funding Source: Swiss National Science Foundation (SNF)

向作者/读者索取更多资源

Air quality monitoring is gaining importance in public health due to the increasing level of the pollution in cities. In addition, people are more concerned about their personal exposure and they are interested to know the concentration levels of the pollutants, which surround them. In recent years, a wearable technology can be useful for continuous air quality monitoring when people are moving in urban and industrial environments. As wearable systems are usually battery-powered and gas sensors are power-hungry, energy-efficient design and power management are required. In this paper, we present a two-stage gas sensing concept where novel multiple-single-walled carbon nanotubes (SWCNT) are proposed as detectors for an energy-hungry metal-oxide (MOX)-semiconductor gas sensor. We simulate the system performance combining the low power consumption of SWCNT gas sensors and the more mature MOX sensor to achieve an energy-efficient wearable device able to monitor the air quality continuously while achieving long lifetime. We perform the simulations using measured power consumptions for two event-driven scenarios to evaluate the power consumption reduction and lifetime extension in a wearable mobile context. Our results show that the proposed approach prolongs node lifetimes by 30 times compared with adaptive duty-cycling with only MOX gas sensors. We also propose that the nanotube recovery time issue can be overcome by using four single nanotubes on the same chip, which results in an extension of lifetime.

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