DocumentCode
63274
Title
Inexpensive approach for production of high-surface-area silica nanoparticles from rice hulls biomass
Author
Palanivelu, Rajagounder ; Padmanaban, Periasamy ; Sutha, Sadhasivam ; Rajendran, Venkatachalam
Author_Institution
Centre for Nano Sci. & Technol., K.S. Rangasamy Coll. of Technol., Tiruchengode, India
Volume
8
Issue
4
fYear
2014
fDate
12 2014
Firstpage
290
Lastpage
294
Abstract
In this study, we prepared amorphous and crystalline silica nanoparticles from rice hulls biomass using pyrolysis technique at different processing temperatures such as 923, 973, 1023, 1073, 1123 and 1173 K. X-ray fluorescence studies show that the purity of all the synthesised silica nanoparticles is in the range of 98-99.7%. X-ray diffraction studies reveal that amorphous silica nanoparticles are formed at 923-1023 K, whereas crystalline particles at 1073-1173 K. Morphology and microstructure of silica nanoparticles are studied by scanning electron and transmission electron microscopes. Silica nanoparticles obtained at different processing temperatures yield particle size in the range of 6-100 nm. Chemical composition and surface functionalities of the particles are examined by energy-dispersive X-ray diffraction and Fourier transform infrared spectroscopic studies. The developed method effectively uses rice hulls biomass as a green natural source in the synthesis of amorphous and crystalline silica nanoparticles with high-specific surface area. The optimised processing temperature (1023 K) enables amorphous silica nanoparticles to have high-specific surface area of 538 m2g-1.
Keywords
Fourier transform spectra; X-ray chemical analysis; X-ray diffraction; X-ray fluorescence analysis; amorphous state; crystal microstructure; infrared spectra; nanobiotechnology; nanofabrication; nanoparticles; particle size; pyrolysis; renewable materials; scanning electron microscopy; silicon compounds; transmission electron microscopy; Fourier transform infrared spectroscopy; SiO2; X-ray diffraction; X-ray fluorescence; amorphous nanoparticles; chemical composition; crystalline silica nanoparticles; energy-dispersive X-ray diffraction; green natural source; high-surface-area silica nanoparticle production; microstructure; morphology; nanoparticle purity; optimised processing temperature; particle size; pyrolysis technique; rice hulls biomass; scanning electron microscope; size 6 nm to 100 nm; surface functionalities; temperature 923 K to 1173 K; transmission electron microscope;
fLanguage
English
Journal_Title
Nanobiotechnology, IET
Publisher
iet
ISSN
1751-8741
Type
jour
DOI
10.1049/iet-nbt.2013.0057
Filename
6969294
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