TY - JOUR
T1 - Modelling of Fickian diffusion to enhance polymer-modified sensor performance
AU - McLoughlin, P.
AU - Flavin, K.
AU - Kirwan, P.
AU - Murphy, B.
AU - Murphy, K.
PY - 2005/5/27
Y1 - 2005/5/27
N2 - The implementation of mathematical modelling to achieve improved sensor response times and increased sample throughput without compromising performance is described. Using an experimental system based upon polymer modified internal reflection infrared spectroscopy the value of multi-disciplinary collaboration within the field of chemical sensor development is demonstrated. Through refinement of the application of a Fickian mathematical model, quantitation of analyte species was achieved using reduced data sets. For example, the analyte TeCE displayed a system equilibration time of greater than 1450 s. However, mathematical modification of the Fickian diffusion model, permitted consistent quantifiable absorbance projection for this compound with sensing times as brief as 329 s. The impact of this mathematical approach for the determination of five industrially significant analytes is presented. Mathematical approaches, which allow quantification of model fit to analytical data and define the impact of reducing term numbers on data sets, is also presented.
AB - The implementation of mathematical modelling to achieve improved sensor response times and increased sample throughput without compromising performance is described. Using an experimental system based upon polymer modified internal reflection infrared spectroscopy the value of multi-disciplinary collaboration within the field of chemical sensor development is demonstrated. Through refinement of the application of a Fickian mathematical model, quantitation of analyte species was achieved using reduced data sets. For example, the analyte TeCE displayed a system equilibration time of greater than 1450 s. However, mathematical modification of the Fickian diffusion model, permitted consistent quantifiable absorbance projection for this compound with sensing times as brief as 329 s. The impact of this mathematical approach for the determination of five industrially significant analytes is presented. Mathematical approaches, which allow quantification of model fit to analytical data and define the impact of reducing term numbers on data sets, is also presented.
KW - Curve fitting
KW - Diffusion modelling
KW - IR Sensing
KW - Polymer enrichment
KW - Sensor development
UR - http://www.scopus.com/inward/record.url?scp=18544368977&partnerID=8YFLogxK
U2 - 10.1016/j.snb.2004.11.099
DO - 10.1016/j.snb.2004.11.099
M3 - Article
AN - SCOPUS:18544368977
SN - 0925-4005
VL - 107
SP - 170
EP - 177
JO - Sensors and Actuators, B: Chemical
JF - Sensors and Actuators, B: Chemical
IS - 1 SPEC. ISS.
ER -