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Tin dioxide nanoparticles: Reverse micellar synthesis and gas sensing properties

IR@CGCRI: CSIR-Central Glass and Ceramic Research Institute, Kolkata

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Title Tin dioxide nanoparticles: Reverse micellar synthesis and gas sensing properties
 
Creator Ahmed, Jahangeer
Vaidya, Sonalika
Ahmad, Tokeer
Sujatha Devi, P
Das, Dipankar
Ganguli, Ashok K.
 
Subject Processing Science
 
Description Tin dioxide (SnO2) nanoparticles have been synthesized by reverse micellar route using cetyltrimethyl ammoniumbromide (CTAB) as the surfactant. Monophasic tin dioxide (SnO2) was obtained using NaOH as the precipitation agent at 60 degrees C, however, when liquor NH3 was used as precipitating agent then crystalline SnO2 nanoparticles are obtained at 500 degrees C. SnO2 prepared using NaOH show crystallite size of 4 and 12 nm after heating at 60 and 500 degrees C respectively using X-ray line broadening studies. Transmission electron microscopy (TEM) studies show agglomerated particles of sizes 70 and 150 nm, respectively. The grain size was found to be 6-8 nm after heating the precursor obtained (using liquor NH3) at 500 degrees C by X-ray line broadening and the TEM studies. Dynamic light-scattering (DLS) studies show the aggregates of SnO2 nanoparticles with uniform size distribution. Mossbauer studies show an increase of s-electron density at the Sn sites compared to bulk SnO2 and a finite quadrupole splitting indicative of lowering of symmetry around tin atoms. The gas sensing characteristics have also been investigated using n-butane which show high sensitivity and fast recovery time. (c) 2007 Elsevier Ltd. All rights reserved.
 
Publisher Elsevier
 
Date 2008-02-05
 
Type Article
PeerReviewed
 
Format application/pdf
 
Identifier http://cgcri.csircentral.net/198/1/Mater_Res_Bull_43_(2008)_264%2D271.pdf
Ahmed, Jahangeer and Vaidya, Sonalika and Ahmad, Tokeer and Sujatha Devi, P and Das, Dipankar and Ganguli, Ashok K. (2008) Tin dioxide nanoparticles: Reverse micellar synthesis and gas sensing properties. Materials Research Bulletin, 43 (2). pp. 264-271. ISSN 0025-5408
 
Relation http://cgcri.csircentral.net/198/