Structure-property relationship of sol-gel electrospun ZnO nanofibers developed for ammonia gas sensing

dc.contributor.authorSenthil, T.
dc.contributor.authorAnandhan, S.
dc.date.accessioned2026-02-05T09:34:07Z
dc.date.issued2014
dc.description.abstractZinc oxide (ZnO) based nanomaterials have been used in various gas sensors due to the wide band gap (3.37. eV), large exciton binding energy and high mobility of charge carriers of ZnO. In this work, nanocrystalline ZnO nanofiber mats were synthesized through combined sol-gel electrospinning techniques followed by calcination, in which poly(styrene- co-acrylonitrile) and zinc acetate were used as the binder and precursor, respectively. Average diameter of the ZnO nanofibers decreased from 400 to 60. nm, while their grain size and crystallinity were enhanced by increasing the calcination temperature. Morphology and structure of the ZnO nanofiber mats were characterized by high resolution transmission electron microscopy, scanning electron microscopy, Fourier transform infrared spectroscopy and X-ray diffraction. ZnO nanofiber mats were found to be superhydrophilic (contact angle was close to 0°) by contact angle measurements. The sensitivity of these ZnO nanofibers in detecting gaseous ammonia was tested using an indigenous set up. Due to their high surface area and superhydrophility, these ZnO nanofiber mats were highly sensitive in sensing gaseous ammonia and the sensitivity of these mats increased as a function of their calcination temperatures. © 2014 Elsevier Inc.
dc.identifier.citationJournal of Colloid and Interface Science, 2014, 432, , pp. 285-296
dc.identifier.issn219797
dc.identifier.urihttps://doi.org/10.1016/j.jcis.2014.06.029
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/26459
dc.publisherAcademic Press Inc. apjcs@harcourt.com
dc.subjectBinding energy
dc.subjectCalcination
dc.subjectChemical sensors
dc.subjectContact angle
dc.subjectElectrospinning
dc.subjectFourier transform infrared spectroscopy
dc.subjectGas detectors
dc.subjectHigh resolution transmission electron microscopy
dc.subjectNanofibers
dc.subjectScanning electron microscopy
dc.subjectSol-gel process
dc.subjectStyrene
dc.subjectX ray diffraction
dc.subjectZinc compounds
dc.subjectCalcination temperature
dc.subjectElectrospinning techniques
dc.subjectExciton-binding energy
dc.subjectHigh surface area
dc.subjectMorphology and structures
dc.subjectNanocrystalline ZnO
dc.subjectStructure property relationships
dc.subjectZnO
dc.subjectZinc oxide
dc.subjectammonia
dc.subjectunclassified drug
dc.subjectzinc oxide nanofiber
dc.subjectzinc oxide nanoparticle
dc.subjectarticle
dc.subjectchemical procedures
dc.subjectcontact angle
dc.subjectcontrolled study
dc.subjectcrystal structure
dc.subjectelectrospinning
dc.subjectgas sensing
dc.subjectinfrared spectroscopy
dc.subjectpowder diffraction
dc.subjectpriority journal
dc.subjectRaman spectrometry
dc.subjectscanning electron microscopy
dc.subjectstructure activity relation
dc.subjectsynthesis
dc.subjecttemperature
dc.subjecttransmission electron microscopy
dc.subjectwettability
dc.titleStructure-property relationship of sol-gel electrospun ZnO nanofibers developed for ammonia gas sensing

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