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LaserSPECks:: laser SPECtroscopic trace-gas sensor networks - sensor integration and applications

Published: 25 April 2007 Publication History

Abstract

We introduce a novel laser spectroscopic trace-gas sensor platform, LaserSPECks that integrates recently developed miniature quartz-enhanced photoacoustic spectroscopy (QE-PAS) gas sensing technology. This universal platform uses infrared laser spectroscopy detect and quantify numerous gas species at part-per-million to part-per-billion (ppm-ppb) concentrations [2]. Traditional gas sensing devices capable of the same sensitivity and specificity are several orders of magnitude larger in size, cost, and power consumption. Thus, high resolution gas sensing technology has been difficult to integrate into small, low-power, replicated sensors suitable for wireless sensor networks (WSNs). This paper presents the principles behind laser based trace gas detection, design issues, and outlines the implementation of a miniaturized trace-gas sensor from commerical-off-the-shelf (COTS) components. We report on an early prototype as a proof-of-concept for integration into WSN applications. We also describe a number of ongoing collaborations in utilizing the platform in air pollution and carbon ux quantification, industrial plant control, explosives detection, and medical diagnosis. Furthermore, we discuss experimental performance evaluations to examine general platform requirements for these types of sensors. The results of our evaluation illustrate that our prototype improves upon previous gas sensing technology by two orders of magnitude in measures of power consumption, size, and cost, without sacrificing sensor performance. Our design and experiments reveal that laser-based trace-gas sensors built from COTS can be successfully implemented and integrated within WSN nodes to enable a wide range of new and important sensing applications.

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  1. LaserSPECks:: laser SPECtroscopic trace-gas sensor networks - sensor integration and applications

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      cover image ACM Conferences
      IPSN '07: Proceedings of the 6th international conference on Information processing in sensor networks
      April 2007
      592 pages
      ISBN:9781595936387
      DOI:10.1145/1236360
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      Published: 25 April 2007

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      Author Tags

      1. lasers
      2. sensors
      3. spectroscopy
      4. trace gas sensing

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      • (2016)Autonomous Gas Detection and Mapping With Unmanned Aerial VehiclesIEEE Transactions on Instrumentation and Measurement10.1109/TIM.2015.250631965:4(765-775)Online publication date: Apr-2016
      • (2016)Wireless Gas Leak Detection and LocalizationIEEE Transactions on Industrial Informatics10.1109/TII.2015.239787912:2(768-779)Online publication date: Apr-2016
      • (2015)Unmanned aerial gas leakage localization and mapping using microdrones2015 IEEE Sensors Applications Symposium (SAS)10.1109/SAS.2015.7133629(1-6)Online publication date: Apr-2015
      • (2014)Ultra Low Power MOX Sensor Reading for Natural Gas Wireless MonitoringIEEE Sensors Journal10.1109/JSEN.2014.233989314:10(3433-3441)Online publication date: Oct-2014
      • (2014)Gas-Drone: Portable gas sensing system on UAVs for gas leakage localizationIEEE SENSORS 2014 Proceedings10.1109/ICSENS.2014.6985282(1431-1434)Online publication date: Nov-2014
      • (2014)Resource Management in Mobile Sink Based Wireless Sensor Networks through Cloud ComputingResource Management in Mobile Computing Environments10.1007/978-3-319-06704-9_20(439-459)Online publication date: 2014
      • (2013)Analyzing the transient response of MOX gas sensors to improve the lifetime of distributed sensing systems5th IEEE International Workshop on Advances in Sensors and Interfaces IWASI10.1109/IWASI.2013.6576066(211-216)Online publication date: Jun-2013
      • (2013)Ultra low power CH4 monitoring with wireless sensors2013 IEEE SENSORS10.1109/ICSENS.2013.6688354(1-4)Online publication date: Nov-2013
      • (2012)Energy-Aware gas sensing using wireless sensor networksProceedings of the 9th European conference on Wireless Sensor Networks10.1007/978-3-642-28169-3_16(245-260)Online publication date: 15-Feb-2012
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