Preparation of a novel Fe3O4/HCO composite adsorbent and the mechanism for the removal of antimony (III) from aqueous solution

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作者
Jun Zhang
Ren-jian Deng
Bo-zhi Ren
Baolin Hou
Andrew Hursthouse
机构
[1] Hunan University of Science and Technology,School of Civil Engineering
[2] Hunan Jing Yi Environmental Protection High Tech Development Co. Ltd.,School of Computing, Engineering & Physical Sciences
[3] University of the West of Scotland,undefined
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Scientific Reports | / 9卷
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摘要
A novel adsorbent (Fe3O4/HCO) was prepared via co-precipitation from a mix of ferriferrous oxide and a Ce-rich waste industrial sludge recovered from an optical polishing activity. The effect of system parameters including reaction time, pH, dose, temperature as well as initial concentration on the adsorption of Sb(III) were investigated by sequential batch tests. The Sb(III)/Fe3O4/HCO system quickly reached adsorption equilibrium within 2 h, was effective over a wide pH (3–7) and demonstrated excellent removal at a 60 mg/L Sb(III) concentration. Three isothermal adsorption models were assessed to describe the equilibrium data for Sb(III) with Fe3O4/HCO. Compared to the Freundlich and dubinin-radushkevich, the Langmuir isotherm model showed the best fit, with a maximum adsorption capacity of 22.853 mg/g, which exceeds many comparable absorbents. Four kinetic models, Pseudo-first-order, Pseudo-second-order, Elovich and Intra-particle, were used to fit the adsorption process. The analysis showed that the mechanism was pseudo-second-order and chemical adsorption played a dominant role in the adsorption of Sb(III) by Fe3O4/HCO (correlation coefficient R2 = 0.993). Thermodynamic calculations suggest that adsorption of Sb(III) ions was endothermic, spontaneous and a thermodynamically feasible process. The mechanism of the adsorption of Sb(III) on Fe3O4/HCO could be described by the synergistic adsorption of Sb (III) on Fe3O4, FeCe2O4 and hydrous ceric oxide. The Fe3O4/HCO sorbent appears to be an efficient and environment-friendly material for the removal of Sb(III) from wastewater.
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[1]  
Filella M(2002)Antimony in the Environment: A Review Focused On Natural Waters: II. Relevant Solution Chemistry Earth-Sci. Rev. 59 265-285
[2]  
Belzile N(2015)Arsenic and Antimony in Water and Wastewater: Overview of Removal Techniques with Special Reference to Latest Advances in Adsorption J. Environ. Manage. 151 326-342
[3]  
Chen Y(2003)Comparing Polyaluminum Chloride and Ferric Chloride for Antimony Removal Water Res. 37 4171-4179
[4]  
Ungureanu G(2012)Antimony Pollution in China Sci. Total Environ. 421–422 41-50
[5]  
Santos S(2018)Antimony Contamination, Consequences and Removal Techniques: A Review Ecotox. Environ. Safe. 156 125-134
[6]  
Boaventura R(1988)Determination of Trace Elements in Sea Water by Graphite-Furnace Atomic Absorption Spectrometry After Preconcentration by Tetrahydroborate Reductive Precipitation Anal. Chim. Acta. 207 291-299
[7]  
Botelho C(2013)Selective Speciation of Inorganic Antimony On Tetraethylenepentamine Bonded Silica Gel Column and its Determination by Graphite Furnace Atomic Absorption Spectrometry Talanta. 107 162-166
[8]  
Kang M(2019)Characteristics of Fulvic Acid During Coprecipitation and Adsorption to Iron Oxides-Copper Aqueous System J. Mol. Liq. 274 664-672
[9]  
Kamei T(2012)Removal of antimony(III) From Aqueous Solution by Freshwater Cyanobacteria Microcystis Biomass Chem. Eng. J. 183 172-179
[10]  
Magara Y(2009)Adsorption of Cd(II) and Pb(II) From Aqueous Solutions On Activated Alumina J. Colloid Interf. Sci. 333 14-26