[1] |
ZHANG T, SUN D D. Removal of arsenic from water using multifunctional micro-/nano-structured MnO2, spheres and microfiltration[J]. Chemical Engineering Journal, 2013, 225(3):271-279.
|
[2] |
WU K, LIU R, LI T, et al. Removal of arsenic(Ⅲ) from aqueous solution using a low-cost by-product in Fe-removal plants-Fe-based backwashing sludge[J]. Chemical Engineering Journal, 2013, 226(1):393-401.
|
[3] |
HOKKANEN S, REPO E, SONG L, et al. Removal of arsenic(Ⅴ) by magnetic nanoparticle activated microfibrillated cellulose[J]. Chemical Engineering Journal, 2015, 260(1385-8947):886-894.
|
[4] |
ZHANG M, GAO B. Removal of arsenic, methylene blue, and phosphate by biochar/AlOOH nanocomposite[J]. Chemical Engineering Journal, 2013, 226(24):286-292.
|
[5] |
GLOCHEUX Y, PASARIN M M, ALBADARIN A B, et al. Removal of arsenic from groundwater by adsorption onto an acidified laterite by-product[J]. Chemical Engineering Journal, 2013, 228(28):565-574.
|
[6] |
LEE J Y, MOON S H, YUN S T. Contamination of groundwater by arsenic and other constituents in an industrial complex[J]. Environmental Earth Sciences, 2010, 60(1):65-79.
|
[7] |
RANGO T, VENGOSH A, DWYER G, et al. Mobilization of arsenic and other naturally occurring contaminants in groundwater of the Main Ethiopian Rift aquifers[J]. Water Research, 2013, 47(15):5801-5818.
|
[8] |
BACQUART T, FRISBIE S, MITCHELL E, et al. Multiple inorganic toxic substances contaminating the groundwater of Myingyan Township, Myanmar:Arsenic, manganese, fluoride, iron, and uranium[J]. Science of the Total Environment, 2015, 517:232-245.
|
[9] |
SALIM M, MUNEKAGE Y. Removal of arsenic from aqueous solution using silica ceramic:Adsorption kinetics and equilibrium studies[J]. International Journal of Environmental Research, 2010, 3(1):13-22.
|
[10] |
欧阳通. 稀土材料氢氧化铈吸附水中亚砷酸与砷酸阴离子的特性效果[C].全国环境模拟与污染控制学术研会, 2003. OUYANG T. Effect of cerium hydroxide on the adsorption of arsenic acid and arsenic acid anion in water[C]. National Institute of Environmental Simulation and Pollution Control, 2003(in Chinese).
|
[11] |
HAN C Y, CHEN H, ZHANG L, et al. Preparation and As(Ⅴ) adsorption performance of mesoporous alumina[J]. Journal of Functional Materials, 2016, 65:204-211.
|
[12] |
MAJUMDER C. Arsenic(Ⅴ) Removal using activated alumina:Kinetics and modeling by response surface[J]. Journal of Environmental Engineering, 2018, 144(3):0417115.
|
[13] |
韩彩芸, 杨柳, 刘航,等. 铝源对介孔氧化铝结构和除As(Ⅴ)性能的影响[J]. 功能材料, 2017, 48(7):7115-7119.
HAN C Y, YANG L, LIU H, et al. The effect of aluminium source on the structure of mesoporous alumina and the performance of As (Ⅴ) removal[J]. Journal of Functional Materials, 2017, 48(7):7115-7119(in Chinese).
|
[14] |
YUAN Q, YIN A X, LUO C, et al. Facile synthesis for ordered mesoporous γ-aluminas with high thermal stability[J]. Journal of the American Chemical Society, 2008, 130(11):3465-3472.
|
[15] |
邵艳秋, 赵婷婷, 付文婷, 等. 氨基改性SBA-15介孔材料的制备及对Pb(Ⅱ)的吸附性能研究[J]. 硅酸盐通报, 2016, 35(2):587-592.
SHAO Y Q, ZHAO T T, FU W T, et al. The preparation of mesoporous materials amino modified SBA-15 and the research on adsorption properties of Pb (Ⅱ)[J]. Journal of Silicate Bulletin, 2016, 35(2):587-592(in Chinese).
|
[16] |
ZHANG S X, NIU H Y, CAI Y, et al. Arsenite and arsenate adsorption on coprecipitated bimetal oxide magnetic nanomaterials:MnFe2O4 and CoFe2O4[J]. Chemical Engineering Journal, 2010, 158(3):599-607.
|
[17] |
丁爱中, 付云飞, 刘培生, 等. 载铝多孔沸石的制备及其对水中砷的吸附研究[J]. 中国科技论文, 2011, 6(9):700-706.
DING A Z, FU Y F, LIU P S,et al. Preparation of aluminum-loaded porous zeolite and its adsorption of arsenic in water[J]. Chinese Journal of Science and Technology, 2011, 6(9):700-706(in Chinese).
|
[18] |
JANG M, SHIN E W, PARK J K, et al. Mechanisms of arsenate adsorption by highly-ordered nano-structured silicate media impregnated with metal oxides[J]. Environmental Science & Technology, 2003, 37(21):5062-5070.
|
[19] |
HAN C, LIU H, PU H, et al. Synthesis and characterization of mesoporous alumina and their performances for removing arsenic(Ⅴ)[J]. Chemical Engineering Journal, 2013, 217(2):1-9.
|