Microwave-Assisted Synthesis of Mixed Metal-Oxide Nanoparticles
Author(s) -
Akrati Verma,
Reena Dwivedi,
Rajendra Prasad,
K.S. Bartwal
Publication year - 2013
Publication title -
journal of nanoparticles
Language(s) - English
Resource type - Journals
eISSN - 2314-4858
pISSN - 2314-484X
DOI - 10.1155/2013/737831
Subject(s) - materials science , monoclinic crystal system , calcination , x ray photoelectron spectroscopy , nanocrystalline material , tetragonal crystal system , raman spectroscopy , nanoparticle , mesoporous material , chemical engineering , phase (matter) , combustion , oxidation state , metal , particle size , crystal structure , nanotechnology , crystallography , chemistry , catalysis , metallurgy , organic chemistry , physics , optics , engineering
Nanoparticles of mixed metal oxides, ZrO2, ZrTiO4, and ZrV2O7 were prepared by microwave-assisted citrate sol-gel and solution combustion method. The prepared nanoparticles were characterized for their structural details using XRD and TEM techniques. The broadening of Raman bands is ascribed to local compositional fluctuations or local positional disordering produced due to random distribution of Zr4+ and Ti4+between equivalent sites. The XPS spectra confirm the incorporation of Ti in ZrO2 and suggest Zr as well as Ti in +4 oxidation state. Gelation and fast combustion seem to be the reason for smaller particle sizes. ZrV2O7 nanocrystalline material was synthesized by microwave- assisted solution combustion method. Low angle powder XRD measurements confirm the mesoporous nature of the prepared material. The effect of calcination temperature on the phase transformation of the materials has been investigated. Among tetragonal, monoclinic, and cubic phases, the monoclinic phase is predominant at higher calcinations temperature. The XPS confirms the incorporation of V2O5 in ZrO2 and suggests that Zr and V are in the same oxidation state (+4). The average particle sizes for ZrO2, ZrTiO4, and ZrV2O7 were found to be in the ranges of 5–10 nm, 2–5 nm, and 10–50 nm, respectively
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