Investigations on the performance of nanotechnology based dynamic metal oxide gas sensor devices

dc.contributor.guideBalraj, B
dc.coverage.spatialInvestigations on the performance of nanotechnology based dynamic metal oxide gas sensor devices
dc.creator.researcherSanjana devi, V S
dc.date.accessioned2024-10-01T11:54:20Z
dc.date.available2024-10-01T11:54:20Z
dc.date.awarded2024
dc.date.completed2024
dc.date.registered
dc.description.abstractnewline In recent years, the development of gas sensors for the detection of dangerous and combustible gases has become crucial due to uncertainty around environmental pollution and industry safety laws. Gas sensing devices obtained with semiconductor nanostructures of metal oxides (such as SnO2, TiO2, ZnO) or metal sulphides (SnS, CdS) have presumed greater significance due to their abundant availability, tunable properties, durability, excellent responses, and the ability to control and customize their chemical, electrical and interaction with the target gas molecules properties. Oxides like SnO2 and ZnO, possesses oxygen vacancies, n-type conductivity and enriched surface area with dangling bonds at nanoscale, suitable for interacting with the gaseous molecules . ZnO has been employed as a sensing material extensively, particularly because of its inexpensive cost, high sensitivity, rapid reaction, and quick recovery. ZnO nanomaterial-based gas sensors have been developed to address the industrial and automobile exhaust gases sensing such as NOx, SOx and also the gaseous molecules present in the breath such as hydrogen sulphide and acetone, as a non-invasive medical diagnostic device. ZnO forms extraordinarily strong exciton-binding structure known as wurtzite (60 meV), which has a wide band gap (3.37 eV). However, ZnO nanostructure also possess disadvantages including relatively low gas sensitivity and need for operating temperature, typically 300 °C to 450 °C, which is very high in practical applications. To address the drawbacks, a variety of investigations and methods, including doping, crystal structural modifications and nano-sizing, have been explored.
dc.description.note
dc.format.accompanyingmaterialNone
dc.format.dimensions21cm
dc.format.extentxix,153p.
dc.identifier.urihttp://hdl.handle.net/10603/593271
dc.languageEnglish
dc.publisher.institutionFaculty of Information and Communication Engineering
dc.publisher.placeChennai
dc.publisher.universityAnna University
dc.relationp.134-152
dc.rightsuniversity
dc.source.universityUniversity
dc.subject.keyworddynamic metal oxide
dc.subject.keywordEngineering
dc.subject.keywordEngineering and Technology
dc.subject.keywordEngineering Multidisciplinary
dc.subject.keywordnanotechnology
dc.titleInvestigations on the performance of nanotechnology based dynamic metal oxide gas sensor devices
dc.title.alternative
dc.type.degreePh.D.

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