A novel strategy for arsenic removal from acid wastewater via strong reduction processing
Tóm tắt
Từ khóa
Tài liệu tham khảo
Abidin AZ, Bakar NA, Ng E, Tan W (2017) Rapid degradation of methyl orange by Ag doped zeolite X in the presence of borohydride. J Taibah Univ Sci 11:1070–1079
Alka S, Shahir S, Ibrahim N, Ndejiko MJ, Vo D-VN, Abd Manan F (2021) Arsenic removal technologies and future trends: a mini review. J Clean Prod 278:123805
Anawar HM (2012) Arsenic speciation in environmental samples by hydride generation and electrothermal atomic absorption spectrometry. Talanta 88:30–42
Balbay A, Şahin Ö, Saka C (2017) Effect of acid addition on hydrogen production from potassium borohydride hydrolysis. Energy Sources, Part a: Recovery, Utilization, and Environmental Effects 39:1383–1389
Bax D, Van Elteren J, Agterdenbos J (1986) The determination of arsenic with hydride generation AAS. A study of the factors influencing the reactions in the absorption cuvette. Spectrochim Acta Part B 41:1007–1013
DallaLibera N, Fabbri P, Mason L, Piccinini L, Pola M (2017) Geostatistics as a tool to improve the natural background level definition: An application in groundwater. Sci Total Environ 598:330–340
Fan Y, Zheng C, Liu H, He C, Shen Z, Zhang TC (2020) Effect of pH on the adsorption of arsenic (V) and antimony (V) by the black soil in three systems: performance and mechanism. Ecotox Environ Safe 191:110145
Gu K, Li W, Han J, Liu W, Qin W, Cai L (2019a) Arsenic removal from lead-zinc smelter ash by NaOH-H2O2 leaching. Sep Purif Technol 209:128–135
Gu K, Liu W, Han J, Ou Z, Wu D, Qin W (2019b) Arsenic and antimony extraction from high arsenic smelter ash with alkaline pressure oxidative leaching followed by Na2S leaching. Sep Purif Technol 222:53–59
Han B, Runnells T, Zimbron J, Wickramasinghe R (2002) Arsenic removal from drinking water by flocculation and microfiltration. Desalination 145:293–298
Hu M, Zhang Z, Luo C, Qiao X (2017) One-pot green synthesis of Ag-decorated SnO2 microsphere: an efficient and reusable catalyst for reduction of 4-nitrophenol. Nanoscale Res Lett 12:1–10
Huang L, Jiao C, Wang L, Huang Z, Liang F, Liu S, Wang Y, Zhang H, Zhang S (2017) Preparation of Rh/Ag bimetallic nanoparticles as effective catalyst for hydrogen generation from hydrolysis of KBH4. Nanotechnology 29:044002
Ingallinella AM, Pacini VA, Fernández RG, Vidoni RM, Sanguinetti G (2011) Simultaneous removal of arsenic and fluoride from groundwater by coagulation-adsorption with polyaluminum chloride. J Environ Sci Health Part A 46:1288–1296
Jomova K, Jenisova Z, Feszterova M, Baros S, Liska J, Hudecova D, Rhodes C, Valko M (2011) Arsenic: toxicity, oxidative stress and human disease. J Appl Toxicol 31:95–107
Khan ZH, Gao M, Qiu W, Song Z (2020) Efficient As (III) removal by novel MoS2-impregnated Fe-oxide–biochar composites: characterization and mechanisms. ACS Omega 5:13224–13235
Kong L, Zhao J, Hu X, Zhu F, Peng X (2022a) Reductive removal and recovery of As (V) and As (III) from strongly acidic wastewater by a UV/formic acid process. Environ Sci Technol 56:9732–9743
Kong Y, Li M, Zhou Y, Pan R, Han Z, Ma J, Chen Z, Shen J (2022b) Carbothermal synthesis of nano-iron-carbon composites for arsenate removal from high-arsenic acid wastewater. J Environ Chem Eng 10:107140
Kwok K, Koong LF, Al Ansari T, McKay G (2018) Adsorption/desorption of arsenite and arsenate on chitosan and nanochitosan. Environ Sci Pollut R 25:14734–14742
Levy IK, Mizrahi M, Ruano G, Zampieri G, FlG R, Litter MI (2012) TiO2-photocatalytic reduction of pentavalent and trivalent arsenic: production of elemental arsenic and arsine. Environ Sci Technol 46:2299–2308
Li S, Shu C, Chen Y, Wang L (2018) A new application of nickel-boron amorphous alloy nanoparticles: anode-catalyzed direct borohydride fuel cell. Ionics 24:201–209
Li Y, Zhu X, Qi X, Shu B, Zhang X, Li K, Wei Y, Hao F, Wang H (2020) Efficient removal of arsenic from copper smelting wastewater in form of scorodite using copper slag. J Clean Prod 270:122428
Liao T, Qu H, Zhang T, Luo Y, Zhang L, Li J, Xi Y, Cui K (2021) Removal of high-concentration of arsenic in acidic wastewater through zero-valent aluminium powder and characterisation of products. Hydrometallurgy 206:105767
Lien H-L, Wilkin RT (2005) High-level arsenite removal from groundwater by zero-valent iron. Chemosphere 59:377–386
Lin S, Lu D, Liu Z (2012) Removal of arsenic contaminants with magnetic γ-Fe2O3 nanoparticles. Chem Eng J 211:46–52
Litter MI (2015) Mechanisms of removal of heavy metals and arsenic from water by TiO2-heterogeneous photocatalysis. Pure Appl Chem 87:557–567
Liu Y, Liu B, Guo A, Dong Z, Jin S, Lu Y (2011) Reduction of nitroarenes to azoxybenzenes by potassium borohydride in water. Molecules 16:3563–3568
Liu R, Yang Z, He Z, Wu L, Hu C, Wu W, Qu J (2016) Treatment of strongly acidic wastewater with high arsenic concentrations by ferrous sulfide (FeS): inhibitive effects of S (0)-enriched surfaces. Chem Eng J 304:986–992
Lu Z, Qi X, Zhu X, Li X, Li K, Wang H (2021) Highly effective remediation of high-arsenic wastewater using red mud through formation of AlAsO4@ silicate precipitate. Environ Pollut 287:117484
Mohan D, Pittman CU Jr (2007) Arsenic removal from water/wastewater using adsorbents—a critical review. J Hazard Mater 142:1–53
Muller J-C, Ferradini C, Pucheault J (1972) Radiolyse à très haute intensité des solutions d́arsenite. Radiochem Radioanal Lett 10:53–58
Ostermeyer P, Bonin L, Folens K, Verbruggen F, García-Timermans C, Verbeken K, Rabaey K, Hennebel T (2021) Effect of speciation and composition on the kinetics and precipitation of arsenic sulfide from industrial metallurgical wastewater. J Hazard Mater 409:124418
Pohl P (2004) Hydride generation–recent advances in atomic emission spectrometry. TrAC Trends Anal Chem 23:87–101
Rahaman MS, Rahman MM, Mise N, Sikder MT, Ichihara G, Uddin MK, Kurasaki M, Ichihara S (2021) Environmental arsenic exposure and its contribution to human diseases, toxicity mechanism and management. Environ Pollut 289:117940
Roy S, Samaddar S (2021) Review on arsenic toxicity: effect on human health and biochemical aspects. Int J Chem Environ Sci 3:14–30
Saha J, Dikshit A, Bandyopadhyay M, Saha K (1999) A review of arsenic poisoning and its effects on human health. Crit Rev Environ Sci Technol 29:281–313
Saka C, Balbay A (2022) Ethylene glycol as an alternative solvent approach for very efficient hydrogen production from sodium borohydride with phosphoric acid and acetic acid catalysts. Int J Hydrogen Energy 47:10500–10507
Samad A, Ahsan S, Tateishi I, Furukawa M, Katsumata H, Suzuki T, Kaneco S (2018) Indirect photocatalytic reduction of arsenate to arsenite in aqueous solution with TiO2 in the presence of hole scavengers. Chinese J Chem Eng 26:529–533
Sharma VK, Sohn M (2009) Aquatic arsenic: toxicity, speciation, transformations, and remediation. Environ Int 35:743–759
Smedley PL, Kinniburgh DG (2002) A review of the source, behaviour and distribution of arsenic in natural waters. Appl Geochem 17:517–568
Valencia H, Kangawa Y, Kakimoto K (2015) Ab initio study of GaAs (100) surface stability over As2, H2 and N2 as a model for vapor-phase epitaxy of GaAs1− xNx. J Cryst Growth 432:6–14
Wang D-Z, Jiang X, Rao W, He J-Z (2009) Kinetics of soil cadmium desorption under simulated acid rain. Ecol Complex 6:432–437
Wang A, Zhou K, Zhang X, Zhou D, Peng C, Chen W (2019) Reductive removal of arsenic from waste acid containing high-acidity and arsenic levels through iodide and copper powder synergy. Chem Eng J 373:23–30
Wang A, Zhou K, Zhang X, Zhou D, Peng C, Chen W (2020) Arsenic removal from highly-acidic wastewater with high arsenic content by copper-chloride synergistic reduction. Chemosphere 238:124675
Wang J, Liu J, Peng X, He M, Hu X, Zhao J, Zhu F, Yang X, Kong L (2022) Reductive removal of As(V) and As(III) from aqueous solution by the UV/sulfite process: recovery of elemental arsenic. Water Res 223:118981
Weerasundara L, Ok Y-S, Bundschuh J (2021) Selective removal of arsenic in water: a critical review. Environ Pollut 268:115668
Wiertz JV, Mateo M, Escobar B (2006) Mechanism of pyrite catalysis of As (III) oxidation in bioleaching solutions at 30 C and 70 C. Hydrometallurgy 83:35–39
Xi Y, Liao T, Li J, Zhang L (2021) Mechanism of zero-valent lead reduction for removing high concentration of arsenic from waste acid of lead smelting system. Process Saf Environ 156:244–255
Zhang H, Wang Y, Liu C, Jiang H (2012) Influence of surfactant CTAB on the electrochemical performance of manganese dioxide used as supercapacitor electrode material. J Alloy Compd 517:1–8
Zhang LK, Qin XQ, Tang JS, Liu W, Yang H (2017) Review of arsenic geochemical characteristics and its significance on arsenic pollution studies in karst groundwater, Southwest China. Appl Geochem 77:80–88
Zhang S-H, Wu M-F, Tang T-T, Xing Q-J, Peng C-Q, Li F, Liu H, Luo X-B, Zou J-P, Min X-B (2018) Mechanism investigation of anoxic Cr (VI) removal by nano zero-valent iron based on XPS analysis in time scale. Chem Eng J 335:945–953
Zhao Y, Wang T, Wang Y, Hao R, Wang H, Han Y (2019) Catalytic reduction of CO2 to HCO2− by nanoscale nickel-based bimetallic alloy under atmospheric pressure. J Ind Eng Chem 77:291–302
Zhou W-k, Peng Y-l, Zheng Y-j, Tao C (2011) Reduction and deposition of arsenic in copper electrolyte. Trans Nonferrous Met Soc China 21:2772–2777