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DESIGN AND MODELING OF NANOCOMPOSITES AND NANOMATERIALS - FABRICATION OF NANOCOMPOSITES, MATERIALS AND DEVICES - MULTIFUNCTIONALITIES IN NANOCOMPOSITES AND NANOMATERIALS - NANOMATERIALS FOR BIOMEDICAL APPLICATIONS

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dc.contributor.authors Guler, MO; Alaf, M; Gultekin, D; Akbulut, H; Alp, A;
dc.date.accessioned 2020-10-16T11:43:05Z
dc.date.available 2020-10-16T11:43:05Z
dc.date.issued 2008
dc.identifier.citation Guler, MO; Alaf, M; Gultekin, D; Akbulut, H; Alp, A; (2008). DESIGN AND MODELING OF NANOCOMPOSITES AND NANOMATERIALS - FABRICATION OF NANOCOMPOSITES, MATERIALS AND DEVICES - MULTIFUNCTIONALITIES IN NANOCOMPOSITES AND NANOMATERIALS - NANOMATERIALS FOR BIOMEDICAL APPLICATIONS. PROCEEDINGS OF THE ASME 2ND MULTIFUNCTIONAL NANOCOMPOSITES AND NANOMATERIALS CONFERENCE 2008, , 151-147
dc.identifier.isbn 978-0-7918-4291-1
dc.identifier.uri https://hdl.handle.net/20.500.12619/70050
dc.description.abstract Tin oxide has multiple technological applications including Li-ion batteries, gas sensors, optoelectronic devices, transparent conductors and solar cells. In this study tin dioxide (SnO2) thin films were deposited on glass substrates by RF sputtering process in the oxygen (O-2) and argon (Ar) plasma medium. The deposition of the thin SnO2 films was carried out by RF sputtering from SnO2 targets. Before deposition the system was evacuated to 10(-4) torr vacuum level and backfilled with Ar. The deposition of the nano structured thin SnO2 films have been performed at different gas pressures. The deposition of the SnO2 was both carried out at different pure argon gas pressures and argon/oxygen mediums with varying oxygen partial pressures. The effect of argon and argon/oxygen partial gas pressures on the grain structure and film thickness were analyzed in the resultant thin films. The deposited thin films both on glass and stainless steel substrates were characterized with scanning electron microscopy (SEM), X-ray diffractometry equipped with multi purpose attachment. The grain size of the deposited layer was determined by X-ray analysis. The Atomic Force Microscopy (AFM) technique was also conducted on the some selected coatings to reveal grain structure and growth behaviors.
dc.language English
dc.publisher THREE PARK AVENUE, NEW YORK, NY 10016-5990 USA
dc.subject Materials Science
dc.title DESIGN AND MODELING OF NANOCOMPOSITES AND NANOMATERIALS - FABRICATION OF NANOCOMPOSITES, MATERIALS AND DEVICES - MULTIFUNCTIONALITIES IN NANOCOMPOSITES AND NANOMATERIALS - NANOMATERIALS FOR BIOMEDICAL APPLICATIONS
dc.type Proceedings Paper
dc.identifier.startpage 147
dc.identifier.endpage 151
dc.contributor.department Sakarya Üniversitesi/Mühendislik Fakültesi/Metalurji Ve Malzeme Mühendisliği Bölümü
dc.contributor.saüauthor Akbulut, Hatem
dc.relation.journal PROCEEDINGS OF THE ASME 2ND MULTIFUNCTIONAL NANOCOMPOSITES AND NANOMATERIALS CONFERENCE 2008
dc.identifier.wos WOS:000255183100019
dc.contributor.author Akbulut, Hatem


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