Trends in odor intensity for human and electronic noses: Relative roles of odorant vapor pressure vs. molecularly specific odorant binding
Open Access
- 12 May 1998
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 95 (10) , 5442-5447
- https://doi.org/10.1073/pnas.95.10.5442
Abstract
Response data were collected for a carbon black-polymer composite electronic nose array during exposure to homologous series of alkanes and alcohols. The mean response intensity of the electronic nose detectors and the response intensity of the most strongly driven set of electronic nose detectors were essentially constant for members of a chemically homologous odorant series when the concentration of each odorant in the gas phase was maintained at a constant fraction of the odorant’s vapor pressure. A similar trend is observed in human odor detection threshold values for these same homologous series of odorants. Because the thermodynamic activity of an odorant at equilibrium in a sorbent phase is equal to the partial pressure of the odorant in the gas phase divided by the vapor pressure of the odorant and because the activity coefficients are similar within these homologous series of odorants for sorption of the vapors into specific polymer films, the data imply that the trends in detector response can be understood based on the thermodynamic tendency to establish a relatively constant concentration of sorbed odorant into each of the polymeric films of the electronic nose at a constant fraction of the odorant’s vapor pressure. Similarly, the data are consistent with the hypothesis that the odor detection thresholds observed in human psychophysical experiments for the odorants studied herein are driven predominantly by the similarity in odorant concentrations sorbed into the olfactory epithelium at a constant fraction of the odorant’s vapor pressure.Keywords
This publication has 17 references indexed in Scilit:
- Array-Based Vapor Sensing Using Chemically Sensitive, Carbon Black−Polymer ResistorsChemistry of Materials, 1996
- Perception of Odor and Nasal Pungency from Homologous Series of Volatile Organic CompoundsIndoor Air, 1994
- Towards an integrated electronic nose using conducting polymer sensorsSensors and Actuators B: Chemical, 1994
- Quantitative structure-property relationship studies of the odor threshold of odor active compoundsChemical Senses, 1991
- Thresholds for odor and nasal pungencyPhysiology & Behavior, 1990
- Correlation of odor intensities with structural properties of odorantsChemical Senses, 1989
- The Dependence of Odor Intensity on the Hydrophobic Properties of MoleculesPublished by American Chemical Society (ACS) ,1981
- Correlation of Odor Intensities and Vapor Pressures with Structural Properties of OdorantsPublished by American Chemical Society (ACS) ,1977
- OLFACTORY CODING ON THE BASIS OF PHYSICOCHEMICAL PROPERTIESAnnals of the New York Academy of Sciences, 1974
- OLFACTIONAnnals of the New York Academy of Sciences, 1955