Deshpande, Aniruddha S. ; Khomane, Ramdas B. ; Vaidya, Bhalchandra K. ; Joshi, Renuka M. ; Harle, Arti S. ; Kulkarni, Bhaskar D. (2008) Sulfur nanoparticles synthesis and characterization from H2S gas, using novel biodegradable iron chelates in W/O microemulsion Nanoscale Research Letters, 3 (6). pp. 221-229. ISSN 1931-7573
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Official URL: http://www.springerlink.com/content/227504r370332p...
Related URL: http://dx.doi.org/10.1007/s11671-008-9140-6
Abstract
Sulfur nanoparticles were synthesized from hazardous H2S gas using novel biodegradable iron chelates in w/o microemulsion system. Fe3+-malic acid chelate (0.05 M aqueous solution) was studied in w/o microemulsion containing cyclohexane, Triton X-100 and n-hexanol as oil phase, surfactant, co-surfactant, respectively, for catalytic oxidation of H2S gas at ambient conditions of temperature, pressure, and neutral pH. The structural features of sulfur nanoparticles have been characterized by X-ray diffraction (XRD), transmission electron microscope (TEM), energy dispersive spectroscopy (EDS), diffused reflectance infra-red Fourier transform technique, and BET surface area measurements. XRD analysis indicates the presence of α -sulfur. TEM analysis shows that the morphology of sulfur nanoparticles synthesized in w/o microemulsion system is nearly uniform in size (average particle size 10 nm) and narrow particle size distribution (in range of 5-15 nm) as compared to that in aqueous surfactant systems. The EDS analysis indicated high purity of sulfur (>99%). Moreover, sulfur nanoparticles synthesized in w/o microemulsion system exhibit higher antimicrobial activity (against bacteria, yeast, and fungi) than that of colloidal sulfur.
Item Type: | Article |
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Source: | Copyright of this article belongs to Springer-Verlag New York Inc. |
Keywords: | Sulfur Nanoparticles; H2S Gas; Iron Chelates; W/O Microemulsion; Antimicrobial Activity |
ID Code: | 17338 |
Deposited On: | 16 Nov 2010 08:06 |
Last Modified: | 17 May 2016 01:59 |
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