DocumentCode
3610338
Title
A UAV-Mounted Whole Cell Biosensor System for Environmental Monitoring Applications
Author
Yi Lu ; Macias, Dominique ; Dean, Zachary S. ; Kreger, Nicole R. ; Pak Kin Wong
Author_Institution
Dept. of Aerosp. & Mech. Eng., Univ. of Arizona, Tucson, AZ, USA
Volume
14
Issue
8
fYear
2015
Firstpage
811
Lastpage
817
Abstract
This study reports the development of a portable whole cell biosensor system for environmental monitoring applications, such as air quality control, water pollution monitoring, and radiation leakage detection. The system consists of a lightweight mechanical housing, a temperature regulating system, and a microfluidic bacterial inoculation channel. The overall system, which is less than 200 g, serves as a portable incubator for cell inoculation and can be mounted on an unmanned aerial vehicle for monitoring remote and unreachable locations. The feedback control system maintains the inoculation temperature within 0.05 °C. The large surface-to-volume ratio of the polydimethylsiloxane microchannel facilitates effective gas exchange for rapid bacterial growth. Molecular dynamic simulation shows effective diffusion of major gas pollutants in PDMS toward gas sensing applications. By optimizing the design, we demonstrate the operation of the system in ambient temperatures from 5 °C to 32 °C and rapid bacterial growth in microchannels compared to standard bacterial culture techniques.
Keywords
air quality; autonomous aerial vehicles; bioMEMS; biodiffusion; biosensors; cellular biophysics; environmental monitoring (geophysics); feedback; fluidic devices; gas sensors; microchannel flow; microorganisms; molecular dynamics method; polymers; water pollution measurement; UAV-mounted whole cell biosensor system; air quality control; ambient temperatures; bacterial culture techniques; bacterial growth; cell inoculation temperature; environmental monitoring applications; feedback control system; gas exchange; gas pollutant diffusion; gas sensing applications; lightweight mechanical housing; microfluidic bacterial inoculation channel; molecular dynamic simulation; polydimethylsiloxane microchannel; radiation leakage detection; surface-to-volume ratio; temperature 0.05 degC; temperature 5 degC to 32 degC; temperature regulating system; unmanned aerial vehicle; water pollution monitoring; Biosensors; Finite element analysis; Heating; Mathematical model; Microchannels; Microorganisms; Temperature sensors; Environmental monitoring; PDMS; PID control; gas diffusivity; microfluidics; portable incubator; whole-cell biosensor;
fLanguage
English
Journal_Title
NanoBioscience, IEEE Transactions on
Publisher
ieee
ISSN
1536-1241
Type
jour
DOI
10.1109/TNB.2015.2478481
Filename
7328305
Link To Document