Journal of the Chinese Ceramic Society, Volume. 52, Issue 1, 143(2024)
Enhanced Sb(V) Adsorption by Acid-Sepiolite Supported Magnetite Nanocomposite Powder
[1] [1] KONG L H, HE M C, HU X Y. Rapid photooxidation of Sb(III) in the presence of different Fe(III) species[J]. Geochim Cosmochim Acta, 2016, 180: 214-226.
[2] [2] CHENG K A, WU Y N, ZHANG B R, et al. New insights into the removal of antimony from water using an iron-based metal-organic framework: Adsorption behaviors and mechanisms[J]. Colloids Surf A Physicochem Eng Aspects, 2020, 602: 125054.
[3] [3] GUO X J, WU Z J, HE M C. Removal of antimony(V) and antimony(III) from drinking water by coagulation-flocculation- sedimentation (CFS)[J]. Water Res, 2009, 43(17): 4327-4335.
[4] [4] MITSUNOBU S, TAKAHASHI Y, TERADA Y, et al. Antimony(V) incorporation into synthetic ferrihydrite, goethite, and natural iron oxyhydroxides[J]. Environ Sci Technol, 2010, 44(10): 3712-3718.
[7] [7] WILSON S C, LOCKWOOD P V, ASHLEY P M, et al. The chemistry and behaviour of antimony in the soil environment with comparisons to arsenic: A critical review[J]. Environ Pollut, 2010, 158(5): 1169-1181.
[9] [9] WANG T N, JIAO Y H, HE M C, et al. Deep insight into the Sb(III) and Sb(V) removal mechanism by Fe-Cu-chitosan material[J]. Environ Pollut, 2022, 303: 119160.
[10] [10] JOHNSON M D, LORENZ B B. Antimony remediation using ferrate(VI)[J]. Sep Sci Technol, 2015, 50(11): 1611-1615.
[11] [11] HUA L, WU C, ZHANG H, et al. Biochar-induced changes in soil microbial affect species of antimony in contaminated soils[J]. Chemosphere, 2021, 263: 127795.
[12] [12] SAR- A, -AHINO-LU G, TüZEN M. Antimony(III) adsorption from aqueous solution using raw perlite and Mn-modified perlite: Equilibrium, thermodynamic, and kinetic studies[J]. Ind Eng Chem Res, 2012, 51(19): 6877-6886.
[14] [14] GUO W J, FU Z Y, ZHANG Z Y, et al. Synthesis of Fe3O4 magnetic nanoparticles coated with cationic surfactants and their applications in Sb(V) removal from water[J]. Sci Total Environ, 2020, 710: 136302.
[15] [15] UNGUREANU G, SANTOS S, BOAVENTURA R, et al. Arsenic and antimony in water and wastewater: Overview of removal techniques with special reference to latest advances in adsorption[J]. J Environ Manage, 2015, 151: 326-342.
[16] [16] ZHU J, WU F C, PAN X L, et al. Removal of antimony from antimony mine flotation wastewater by electrocoagulation with aluminum electrodes[J]. J Environ Sci (China), 2011, 23(7): 1066-1071.
[17] [17] MADRID Y, ESTHER BARRIO-CORDOBA M, CáMARA C. Biosorption of antimony and chromium species by Spirulina platensis and Phaseolus. Applications to bioextract antimony and chromium from natural and industrial waters[J]. Analyst, 1998, 123(7): 1593-1598.
[18] [18] XI J H, HE M C. Removal of Sb(III) and Sb(V) from aqueous media by goethite[J]. Water Qual Res J, 2013, 48(3): 223-231.
[19] [19] XU C H, ZHANG B L, ZHU L J, et al. Sequestration of antimonite by zerovalent iron: Using weak magnetic field effects to enhance performance and characterize reaction mechanisms[J]. Environ Sci Technol, 2016, 50(3): 1483-1491.
[20] [20] LENG Y Q, GUO W L, SU S N, et al. Removal of antimony(III) from aqueous solution by graphene as an adsorbent[J]. Chem Eng J, 2012, 211-212: 406-411.
[21] [21] XU Y H, OHKI A, MAEDA S. Adsorption and removal of antimony from aqueous solution by an activated alumina[J]. Toxicol Environ Chem, 2001, 80(3-4): 133-144.
[22] [22] WINGENFELDER U, FURRER G, SCHULIN R. Sorption of antimonate by HDTMA-modified zeolite[J]. Microporous Mesoporous Mater, 2006, 95(1-3): 265-271.
[25] [25] TANG S C N, LO I M C. Magnetic nanoparticles: Essential factors for sustainable environmental applications[J]. Water Res, 2013, 47(8): 2613-2632.
[26] [26] SHEN Y F, TANG J, NIE Z H, et al. Tailoring size and structural distortion of Fe3O4 nanoparticles for the purification of contaminated water[J]. Bioresour Technol, 2009, 100(18): 4139-4146.
[27] [27] LIN Y, WENG C, CHEN F. Effective removal of AB24 dye by nano/micro-size zero-valent iron[J]. Sep Purif Technol, 2008, 64(1): 26-30.
[31] [31] YU S H, LI H, YAO Q Z, et al. Microwave-assisted preparation of sepiolite-supported magnetite nanoparticles and their ability to remove low concentrations of Cr(VI)[J]. RSC Adv, 2015, 5(103): 84471-84482.
[32] [32] ZAICHICK S, ZAICHICK V, KARANDASHEV V, et al. Accumulation of rare earth elements in human bone within the lifespan[J]. Metallomics, 2011, 3(2): 186-194.
[33] [33] ZHANG Y H, HE M A, XU M B, et al. Effect of modified sepiolite and carbon fiber composite on performance of oil-well cement and mechanism analysis[J]. Constr Build Mater, 2020, 239: 117837.
[34] [34] YAO Q Z, YU S H, ZHAO T L, et al. Enhanced potential toxic metal removal using a novel hierarchical SiO2-Mg(OH)2 nanocomposite derived from sepiolite[J]. Minerals, 2019, 9(5): 298.
[35] [35] JIANG S D, YAO Q Z, ZHOU G T, et al. Fabrication of hydroxyapatite hierarchical hollow microspheres and potential application in water treatment[J]. J Phys Chem C, 2012, 116(7): 4484-4492.
[36] [36] DOS SANTOS J M N, PEREIRA C R, FOLETTO E L, et al. Alternative synthesis for ZnFe2O4/chitosan magnetic particles to remove diclofenac from water by adsorption[J]. Int J Biol Macromol, 2019, 131: 301-308.
[37] [37] CHEN Y, CUI J J, LIANG Y N, et al. Synthesis of magnetic carboxymethyl cellulose/graphene oxide nanocomposites for adsorption of copper from aqueous solution[J]. Int J Energy Res, 2021, 45(3): 3988-3998.
[38] [38] SIMEONIDIS K, KALAITZIDOU K, KAPRARA E, et al. Uptake of Sb(V) by nano Fe3O4-decorated iron oxy-hydroxides[J]. Water, 2019, 11(1): 181.
[39] [39] YU S H, WANG Y, WAN Y Y, et al. Enhance antimony adsorption from aquatic environment by microwave-assisted prepared Fe3O4 nanospherolites[J]. Environ Sci Pollut R, 2023, 30: 94401-94413.
[40] [40] ZHU K C, DUAN Y Y, WANG F, et al. Silane-modified halloysite/Fe3O4 nanocomposites: Simultaneous removal of Cr(VI) and Sb(V) and positive effects of Cr(VI) on Sb(V) adsorption[J]. Chem Eng J, 2017, 311: 236-246.
[41] [41] BISWAS B K, INOUE J I, KAWAKITA H, et al. Effective removal and recovery of antimony using metal-loaded saponified orange waste[J]. J Hazard Mater, 2009, 172(2-3): 721-728.
[42] [42] LIU Y L, LOU Z M, YANG K L, et al. Coagulation removal of Sb(V) from textile wastewater matrix with enhanced strategy: Comparison study and mechanism analysis[J]. Chemosphere, 2019, 237: 124494.
[43] [43] WU Z J, HE M C, GUO X J, et al. Removal of antimony(III) and antimony(V) from drinking water by ferric chloride coagulation: Competing ion effect and the mechanism analysis[J]. Sep Purif Technol, 2010, 76(2): 184-190.
[44] [44] YANG G X, JIANG H. Amino modification of biochar for enhanced adsorption of copper ions from synthetic wastewater[J]. Water Res, 2014, 48: 396-405.
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于生慧, 张元诏, 王艳, 冯馨怡, 郭军康. Enhanced Sb(V) Adsorption by Acid-Sepiolite Supported Magnetite Nanocomposite Powder[J]. Journal of the Chinese Ceramic Society, 2024, 52(1): 143
Received: May. 12, 2023
Accepted: --
Published Online: Jul. 30, 2024
The Author Email: 于生慧 (yu2008hefei@163.com)
CSTR:32186.14.