Chemistry Journal
Articles Information
Chemistry Journal, Vol.1, No.4, Aug. 2015, Pub. Date: Jun. 17, 2015
The Effect of Acid and Thermal Treatment on a Natural Diatomite
Pages: 144-150 Views: 5089 Downloads: 3469
Authors
[01] Azimi Pirsaraei Seyed Reza, Occupational Health Engineering Department, Faculty of Medical Sciences, Tarbiat Modares University, Jalal Ale Ahmad Highway, Tehran, IR Iran.
[02] Asilian Mahabadi Hasan, Occupational Health Engineering Department, Faculty of Medical Sciences, Tarbiat Modares University, Jalal Ale Ahmad Highway, Tehran, IR Iran.
[03] Jonidi Jafari Ahmad, Environmental Engineering Department, Faculty of Health, Iran University of Medical Sciences, Shahid Hemmat Highway, Tehran, IR Iran.
[04] Farahmandkia Zohreh, Analytical Chemistry & Chemistry Laboratory, Faculty of Health, Zanjan University of Medical Sciences, Parvin Etesaami, Zanjan, IR Iran.
[05] Taran Jafar, Analytical Chemistry & Chemistry Laboratory, Faculty of Health, Zanjan University of Medical Sciences, Parvin Etesaami, Zanjan, IR Iran.
Abstract
The characterizations of a natural diatomite such as chemical compositions, specific surface area, total pore volume, pore size distribution and XRD were studied. The diatomite that was treated only with sulfuric acid displayed a larger surface area, expanded total pore volume and increased pore size in comparison with both washed natural diatomite with deionized water (D-H2O) and the diatomite treated with sulfuric acid then calcinated at 550°C (D-H2SO4+550). The specific surface area and total pore volume were increased 46.63% and 71.40%, respectively. The results showed that the diatomite was composed of cristobalite, quartz and feldspar phases. Acid treatment and then calcination at 550°C changed the Si/Al ratio and grew the crystallite size. BJH with DFT analysis showed that the diatomite had very disordered micro/mesoporous pore networks. The pore size distribution of the diatomite was from 1.4100 nm. Its isotherm was type IV and showed a long hysteresis loop that resembled the H3 type on the basis of the IUPAC classification. Therefore, the diatomite that was treated only with sulfuric acid can be to serve as a catalyst support or an adsorbent.
Keywords
Natural Diatomite, Acid Treatment, X-Ray Diffraction, Crystallite Size Determination, Scanning Electron Microscopy
References
[01] M.B. Morsy Heg. Diatomite: Its Characterization, Modifications and Applications. Asian J. Mater. Sci. 2010; 2: 121-136.
[02] M. Aivalioti, I. Vamvasakis, E. Gidarakos. BTEX and MTBE adsorption onto raw and thermally modified diatomite. J. Hazard. Mater. 2010; 178: 136-143.
[03] P. Vassileva, G. Gentscheva, E. Ivanova, P. Tzvetkova, D. Voykova, M. Apostolova. Characterization of natural diatomites from Bulgaria. Compt. Rend. Acad. Bulg. Sci. 2011; 64: 823-830.
[04] H. Mahani, M. Kazemeini. Treatment of iatomaceous earth to obtain its catalyst support. Sci. Iranica. 2003; 10: 350-356.
[05] S. Dehestani Athar, H. Asilian. Catalytic oxidation of carbon monoxide using copper-zinc mixed oxide nanoparticles supported on diatomite. J. Health Scope. 2012; 1:52-56.
[06] A. Chaisena, K. Rangsriwatananon. Effects of thermal and acid treatments on some physic-chemical properties of Lampang diatomite. Suranaree. J. Sci. Technol. 2004; 11: 289-299.
[07] P.S. Vassileva, M.S. Apostolova, A.K. Detcheva, E.H. Ivanova. Bulgarian natural diatomites: modification and characterization. Chem. Pap. 2013; 67: 342–349.
[08] G. Zhang, D. Cai, M. Wang, C. Zhang, J. Zhang, Z. Wu. Microstructural modification of diatomite by acid treatment, high-speed shear, and ultrasound. Microporous Mesoporous Mater. 2013; 65: 106-112.
[09] M. Aivalioti, P. Papoulias, A. Kousaiti, E. Gidarakos. Adsorption of BTEX, MTBE and TAME on natural and modified diatomite. J. Hazard. Mater. 2012; 208:117-127.
[10] R. Jenkins, R.L. Snyder. Introduction_to_X-ray powder diffractometry. J D Winefordner series editor. John Willey & Sons, New York, 1996, pp. 47-94.
[11] E. Lifshin. X-ray characterization of materials. Weinheim: WILEY-VCH Verlag GmbH Germany, D-69469, 1999, pp. 1-105.
[12] A. Monshi, M.A. Foroughi, M.A. Monshi. Modified Scherrer equation to estimate more accurately nano-crystallite size using XRD. World. J. Nanoscience. Eng. 2012; 2: 154-160.
[13] V. Victor Drits, J. Srodon, D.D. Eberl. XRD measurement of mean crystallite thickness of Illite and Illite/Smectite: Reappraisal of the Kubler index and the Scherrer equation. Clays Clay miner. 1997; 45: 461-475.
[14] K.S. Sing, D.H. Everett, R.A.W. Haul, L. Moscou. R.A. Pierotti, J. Rouquerol, T. Siemieniewska. Reporting physisorption data for gas/solid systems with special reference to the determination of surface area and porosity. Pure Appl. Chem. 1985; 57: 603-619.
[15] P.B. Balbuenat, K.E. Gubbins. Theoretical interpretation of adsorption behavior of simple fluids in slit pores. Langmuir. 1993; 9: 1801-1814.
[16] S. Naumov. Hysteresis phenomena in Mesoporous materials [dissertation]. Faculty of physics and Geosciences university of Leipzig, 2009.
[17] M. Thommes. Physical adsorption characterization of nanoporous materials. Chem. Ing. Tech. 2010; 82: 1059-1073.
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