Literature DB >> 20401518

Synthesis and characterization of Fe-MCM-41 from rice husk silica by hydrothermal technique for arsenate adsorption.

Kitirote Wantala1, Suthipong Sthiannopkao, Bang-orn Srinameb, Nurak Grisdanurak, Kyoung Woong Kim.   

Abstract

Rice husk (RH) agro-waste was used as a raw material for synthesizing mesoporous molecular sieves, MCM-41. The Fe-MCM-41 was prepared by the hydrothermal technique (HT), resulting in a higher surface area and crystallinity than when prepared under ambient conditions. In addition, a hexagonal structure was clearly seen with hydrothermal technique (HT) preparation. The adsorption of arsenate by HT-Fe-MCM-41 was investigated. The factors studied affecting arsenate adsorption capacity were ferric content in MCM-41, contact time, pH of solution, and initial arsenate concentration. It was found that HT-Fe-MCM-41 at the Si/Fe mole ratio of 10 gave the highest adsorption capacity. Arsenate adsorption reached equilibrium within 4 h. The adsorption capacity of HT-Fe-MCM-41 (Si/Fe = 10) was affected by the initial pH value and the initial arsenate concentration. The adsorption capacity was highest at pH 3 and decreased thereafter with increases in the pH of solution value. The Langmuir model fit the arsenate adsorption isotherm well. The maximum adsorption capacity for arsenate was 1,111 microg g(-1).

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Year:  2010        PMID: 20401518     DOI: 10.1007/s10653-010-9292-z

Source DB:  PubMed          Journal:  Environ Geochem Health        ISSN: 0269-4042            Impact factor:   4.609


  8 in total

1.  Removal of arsenic from contaminated water sources by sorption onto iron-oxide-coated polymeric materials.

Authors:  Ioannis A Katsoyiannis; Anastasios I Zouboulis
Journal:  Water Res       Date:  2002-12       Impact factor: 11.236

2.  Characterization of platinum-iron catalysts supported on MCM-41 synthesized with rice husk silica and their performance for phenol hydroxylation.

Authors:  Jitlada Chumee; Nurak Grisdanurak; Arthit Neramittagapong; Jatuporn Wittayakun
Journal:  Sci Technol Adv Mater       Date:  2009-03-04       Impact factor: 8.090

3.  A laboratory study for the treatment of arsenic, iron, and manganese bearing ground water using Fe(3+) impregnated activated carbon: effects of shaking time, pH and temperature.

Authors:  Prasenjit Mondal; Chandrajit Balomajumder; Bikash Mohanty
Journal:  J Hazard Mater       Date:  2006-11-01       Impact factor: 10.588

4.  Iron oxide-loaded slag for arsenic removal from aqueous system.

Authors:  Fu-Shen Zhang; Hideaki Itoh
Journal:  Chemosphere       Date:  2005-07       Impact factor: 7.086

5.  Adsorption of As(III) from aqueous solutions by iron oxide-coated sand.

Authors:  V K Gupta; V K Saini; Neeraj Jain
Journal:  J Colloid Interface Sci       Date:  2005-08-01       Impact factor: 8.128

6.  Arsenic removal from high-arsenic water by enhanced coagulation with ferric ions and coarse calcite.

Authors:  S Song; A Lopez-Valdivieso; D J Hernandez-Campos; C Peng; M G Monroy-Fernandez; I Razo-Soto
Journal:  Water Res       Date:  2005-12-15       Impact factor: 11.236

Review 7.  Arsenic removal from water/wastewater using adsorbents--A critical review.

Authors:  Dinesh Mohan; Charles U Pittman
Journal:  J Hazard Mater       Date:  2007-01-07       Impact factor: 10.588

8.  Arsenic removal by iron-modified activated carbon.

Authors:  Weifang Chen; Robert Parette; Jiying Zou; Fred S Cannon; Brian A Dempsey
Journal:  Water Res       Date:  2007-03-23       Impact factor: 11.236

  8 in total

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