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  1. Journal of Materials Science: Materials in Electronics
  2. Journal of Materials Science: Materials in Electronics : Volume 13
  3. Journal of Materials Science: Materials in Electronics : Volume 13, Issue 9, September 2002
  4. Synthesis and investigations of rutile phase nanoparticles of TiO$_{2}$
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Journal of Materials Science: Materials in Electronics : Volume 28
Journal of Materials Science: Materials in Electronics : Volume 27
Journal of Materials Science: Materials in Electronics : Volume 26
Journal of Materials Science: Materials in Electronics : Volume 25
Journal of Materials Science: Materials in Electronics : Volume 24
Journal of Materials Science: Materials in Electronics : Volume 23
Journal of Materials Science: Materials in Electronics : Volume 22
Journal of Materials Science: Materials in Electronics : Volume 21
Journal of Materials Science: Materials in Electronics : Volume 20
Journal of Materials Science: Materials in Electronics : Volume 19
Journal of Materials Science: Materials in Electronics : Volume 18
Journal of Materials Science: Materials in Electronics : Volume 17
Journal of Materials Science: Materials in Electronics : Volume 16
Journal of Materials Science: Materials in Electronics : Volume 15
Journal of Materials Science: Materials in Electronics : Volume 14
Journal of Materials Science: Materials in Electronics : Volume 13
Journal of Materials Science: Materials in Electronics : Volume 13, Issue 12, December 2002
Journal of Materials Science: Materials in Electronics : Volume 13, Issue 11, November 2002
Journal of Materials Science: Materials in Electronics : Volume 13, Issue 10, October 2002
Journal of Materials Science: Materials in Electronics : Volume 13, Issue 9, September 2002
Review Modern magnetic materials in data storage
Nitrogen incorporation in GaInNAs and GaAsN near the solubility limit
The growth of thin films of copper chalcogenide films by MOCVD and AACVD using novel single-molecule precursors
Properties and structure of germanium-containing lithium aluminoborate glasses
Electronic conductivity of the (+)aluminum/complex anodic film/electrolyte system
Oxygen impurities in Ga$_{0.51}$In$_{0.49}$P grown by solid-source molecular beam epitaxy
Synthesis and investigations of rutile phase nanoparticles of TiO$_{2}$
Preparation, characterization and CO sensing of Au/iron oxide thin films
Influence of the rare-earths oxides doped on the SnO$_{2}$CoOMnO$_{2}$Ta$_{2}$O$_{5}$ varistor system
Journal of Materials Science: Materials in Electronics : Volume 13, Issue 8, August 2002
Journal of Materials Science: Materials in Electronics : Volume 13, Issue 7, July 2002
Journal of Materials Science: Materials in Electronics : Volume 13, Issue 6, June 2002
Journal of Materials Science: Materials in Electronics : Volume 13, Issue 5, May 2002
Journal of Materials Science: Materials in Electronics : Volume 13, Issue 4, April 2002
Journal of Materials Science: Materials in Electronics : Volume 13, Issue 3, March 2002
Journal of Materials Science: Materials in Electronics : Volume 13, Issue 2, February 2002
Journal of Materials Science: Materials in Electronics : Volume 13, Issue 1, January 2002
Journal of Materials Science: Materials in Electronics : Volume 12
Journal of Materials Science: Materials in Electronics : Volume 11
Journal of Materials Science: Materials in Electronics : Volume 10
Journal of Materials Science: Materials in Electronics : Volume 9
Journal of Materials Science: Materials in Electronics : Volume 8

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Synthesis and investigations of rutile phase nanoparticles of TiO$_{2}$

Content Provider Springer Nature Link
Author Borse, Pramod H. Kankate, Laxman S. Dassey, F. Vogel, W. Urban, J. Kulkarni, Sulabha K.
Copyright Year 2002
Abstract TiO$_{2}$ nanoparticles have been synthesized at room temperature using a simple chemical precipitation route. Particles were further coated with polymer. Detailed structural analysis of the particles has been carried out. Wide-angle X-ray scattering (WAXS) and transmission electron microscopy (TEM) confirm that “as-synthesized” particles as well as annealed particles are nanoparticles having pure rutile phase. Thermal annealing at 1000 °C of 4.2 nm particles led to an increased size ∼20 nm in the same phase. The purity and composition of the particles were determined using energy dispersive analysis of X-rays (EDAX) and X-ray photoelectron spectroscopy (XPS), respectively.
Starting Page 553
Ending Page 559
Page Count 7
File Format PDF
ISSN 09574522
Journal Journal of Materials Science: Materials in Electronics
Volume Number 13
Issue Number 9
e-ISSN 1573482X
Language English
Publisher Kluwer Academic Publishers
Publisher Date 2002-01-01
Publisher Place Boston
Access Restriction One Nation One Subscription (ONOS)
Subject Keyword Optical and Electronic Materials Characterization and Evaluation Materials
Content Type Text
Resource Type Article
Subject Atomic and Molecular Physics, and Optics Biomaterials Biophysics Condensed Matter Physics Electronic, Optical and Magnetic Materials Bioengineering Electrical and Electronic Engineering Biomedical Engineering
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