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روشهای اصلاح آلودگی آرسنیک در آب و خاک | ||
تحقیقات کاربردی خاک | ||
دوره 8، شماره 4، اسفند 1399، صفحه 69-84 اصل مقاله (1.13 M) | ||
نوع مقاله: مقاله پژوهشی | ||
نویسندگان | ||
ابراهیم سپهر* 1؛ محمد علی شیری آذر2 | ||
1دانشگاه ارومیه | ||
2ایران، ارومیه، دانشگاه ارومیه، دانشکده کشاورزی، گروه علوم خاک | ||
چکیده | ||
آرسنیک یک عامل سرطانزا است که وجود آن در منابع آبی و خاکی در غلظتهای بیشتر از حد قابلقبول یک تهدید زیستمحیطی تلقی میشود. آلودگی آب و خاک به آرسنیک، مهمترین مسیر ورود آن به چرخه غذایی انسان است. آرسنیک در محیط زیست به شکلهای آلی و معدنی وجود دارد و سمیت شکلهای معدنی به علت حلالیت و تحرک بالای آنها بیشتر است. آرسنیک در خاک معمولاً به شکل جذبشده به سطوح ذرات خاک بهویژه اکسی هیدروکسیدهای آهن و به عنوان جزئی از کانیهای خاک وجود دارد که پایداری و تحرک آنها تابع شرایط محیطی از قبیل pH، Eh و وجود یونهای رقابت کننده است. روشهای سمیت زدایی آرسنیک از آب و خاک به سه نوع فیزیکی، شیمیایی و زیستی تقسیم میشوند. کمهزینه بودن، دوستدار محیطزیست، عدم تولید بقایای سمی، گونهبندی آرسنیک و عملیات اجرایی آسان از عوامل تأثیرگذار در انتخاب نوع روش است. در این مقاله مقدار و عوامل تعیینکننده غلظت و گونهبندی آرسنیک در آب، خاک و روش جزءبندی آرسنیک در خاک مرور میشود. در ادامه روشهای حذف و سمیت زدایی آرسنیک از آبوخاک با تأکید بر روشهای جذب و نامتحرک سازی آن با استفاده از موادی با منشأ طبیعی، فراوانی زیاد، غیر آلاینده بودن و دارای ظرفیت بالای جذب مرور میشود. | ||
کلیدواژهها | ||
آرسنیک؛ سمیت؛ اکسی هیدروکسیدهای آهن؛ جذب | ||
مراجع | ||
Aide M., Beighley D., and Dunn D. 2016. Arsenic in the soil environment: A soil chemistry. International Journal of Applied, 11(1): 1-28. Akter K.F., Owens G., Davey D.E., and Naidu R. 2005. Arsenic speciation and toxicity in biological systems. In Reviews of environmental contamination and Toxicology: 97-149. Springer, New York, NY. Alchouron J., Navarathna C., Chludil H.D., Dewage N.B., Perez F., Pittman Jr C.U., Vega A.S., and Mlsna T.E. 2019. Assessing South American Guadua chacoensis bamboo biochar and Fe3O4 nanoparticle dispersed analogues for aqueous arsenic (V) remediation. Science of The Total Environment, 706: 135943. Alloway B.J. 2013. Sources of heavy metals and metalloids in soils. In Heavy metals in soils. Springer, Dordrecht, pp.11-50. An B., Steinwinder T.R., and Zhao D. 2005. Selective removal of arsenate from drinking water using a polymeric ligand exchanger. Water Research, 39(20): 4993-5004. Arslan B., Djamgoz M.B., and Akün E. 2016. ARSENIC: A review on exposure pathways, accumulation, mobility and transmission into the human food chain. In Reviews of Environmental Contamination and Toxicology, Volume 243: 27-51. Bagherifam S., Lakzian A., Fotovat A., Khorasani R., Akbarzadeh S., and Motadaien A. 2014. 'Immobilization of arsenic in a calcareous soil using an iron-manganese- and aluminum-modified zeoilite', Journal of Environmental Science and Technology, 16(2), pp. 39-54. Bakshi S., Banik C., Rathke S.J., and Laird D.A. 2018. Arsenic sorption on zero-valent iron-biochar complexes. Water research, 137:153-163. Bhattacharya P., Welch A.H., Stollenwerk K.G., McLaughlin M.J., Bundschuh J., and Panaullah, G. 2007. Arsenic in the environment: biology and chemistry. Science of the Total Environment, 379: pp.109–120 Bhowmick S., Chakraborty S., Mondal P., Van Renterghem W., Van den Berghe S., Roman-Ross G., Chatterjee D., and Iglesias M. 2014. Montmorillonite-supported nanoscale zero-valent iron for removal of arsenic from aqueous solution: kinetics and mechanism. Chemical Engineering Journal, 243: 14-23. Bhowmick S., Chakraborty S., Mondal P., Van Renterghem W., Van den Berghe S., Roman-Ross G., Chatterjee D., and Iglesias M. 2014. Montmorillonite-supported nanoscale zero-valent iron for removal of arsenic from aqueous solution: Kinetics and mechanism. Chemical Engineering Journal, 243, pp.14-23. Bowell R.J., Alpers C.N., Jamieson H.E., Nordstrom D.K., and Majzlan J. 2014. The environmental geochemistry of arsenic—an overview—. Reviews in Mineralogy and Geochemistry, 79(1): 1-16. Chaudhry S.A., Zaidi Z., and Siddiqui S.I. 2017. Isotherm, kinetic and thermodynamics of arsenic adsorption onto Iron-Zirconium Binary Oxide-Coated Sand (IZBOCS): Modelling and process optimization. Journal of Molecular Liquids, 229, pp.230-240. Chen Y., Xu J., Lv Z., Huang L., and Jiang J., 2018. Impacts of biochar and oyster shells waste on the immobilization of arsenic in highly contaminated soils. Journal of Environmental Management, 217: 646-653. Choong T.S., Chuah T.G., Robiah Y., Koay F.G., and Azni I. 2007. Arsenic toxicity, health hazards and removal techniques from water: an overview. Desalination, 217(1-3): 139-166. Chowdhury S.R., and Yanful E.K. 2010. Arsenic and chromium removal by mixed magnetite–maghemite nanoparticles and the effect of phosphate on removal. Journal of Environmental Management, 91(11): 2238-2247. Dai Y., Lv J., Liu K., Zhao X., and Cao Y., 2016. Major controlling factors and prediction models for arsenic uptake from soil to wheat plants. Ecotoxicology and Environmental Safety, 130: 256-262. Dhuldhaj U.P., Yadav I.C., Singh S., and Sharma N.K. 2013. Microbial interactions in the arsenic cycle: adoptive strategies and applications in environmental management. In Reviews of Environmental Contamination and Toxicology. Volume 224: 1-38. Springer, New York, NY. Dudas M.J. 1987. Accumulation of native arsenic in acid sulphate soils in Alberta. Canadian journal of soil science, 67(2): 317-331. Elhalil A., Farnane M., Machrouhi A., Mahjoubi F.Z., Elmoubarki R., Tounsadi H., Abdennouri M., and Barka N. 2018. Effects of molar ratio and calcination temperature on the adsorption performance of Zn/Al layered double hydroxide nanoparticles in the removal of pharmaceutical pollutants. Journal of Science: Advanced Materials and Devices, 3(2), pp.188-195. (In Persian) Elwakeel K.Z., and Guibal E. 2015. Arsenic (V) sorption using chitosan/Cu(OH)2 and chitosan/CuO composite sorbents. Carbohydrate polymers, 134:190-204. Fu F., and Wang Q. 2011. Removal of heavy metal ions from wastewaters: a review. Journal of environmental management, 92(3): 407-418. Golami M., Mohammadi H., and Mokhtari S.A. 2009. Application of Reverse Osmosis Technology for Arsenic Removal from Drinking Water. J Adv Med Biomed Res, 17 (68):9-20. (In Persian) Guo Y., Zhu Z., Qiu Y., and Zhao J. 2013. Synthesis of mesoporous Cu/Mg/Fe layered double hydroxide and its adsorption performance for arsenate in aqueous solutions. Journal of Environmental Sciences, 25(5), pp.944-953. Gupta D.K., and Chatterjee S. eds. 2017. Arsenic Contamination in the Environment: The Issues and Solutions. Springer. Guzmán A., Nava J.L., Coreño O., Rodríguez I., and Gutiérrez S. 2016. Arsenic and fluoride removal from groundwater by electrocoagulation using a continuous filter-press reactor. Chemosphere, 144: 2113-2120. Han B., Runnells T., Zimbron J., and Wickramasinghe R. 2002. Arsenic removal from drinking water by flocculation and microfiltration. Desalination, 145(1-3): 293-298. Hartley W., and Lepp N.W. 2008. Remediation of arsenic contaminated soils by iron-oxide application, evaluated in terms of plant productivity, arsenic and phytotoxic metal uptake. Science of the Total Environment, 390(1): 35-44. Hassan M.M. 2018. Arsenic in groundwater: poisoning and risk assessment. Crc Press. Haydarpoor L., Soltani Toolarood A., and Goli Kalanpa E. 2016. Effect of Arsenic-Resistant Plant Growth Promoting (PGP) Isolates on some Physiological Characteristics, Growth and Nutrition of Mentha peparata L. in an Arsenic-Polluted Soil. Applied Soil Research, 2(4): 14-25. (In Persian) He R., Peng Z., Lyu H., Huang H., Nan Q., and Tang J. 2018. Synthesis and characterization of an iron-impregnated biochar for aqueous arsenic removal. Science of the Total Environment, 612: 1177-1186. Hu C., Liu H., Chen G., and Qu J. 2012. Effect of aluminum speciation on arsenic removal during coagulation process. Separation and Purification Technology, 86, pp.35-40. Hu X., Ding Z., Zimmerman A.R., Wang S., and Gao B. 2015. Batch and column sorption of arsenic onto iron-impregnated biochar synthesized through hydrolysis. Water research, 68: 206-216. Huang R.Q., Gao S.F., Wang W.L., Staunton S., and Wang G. 2006. Soil arsenic availability and the transfer of soil arsenic to crops in suburban areas in Fujian Province, southeast China. Science of the Total Environment, 368(2-3): 531-541. Jain N., and Chandramani, S. 2018. Arsenic poisoning-An overview. Indian Journal of Medical Specialities, 9(3):143-145. Jin H., Capareda S., Chang Z., Gao J., Xu Y., and Zhang J. 2014. Biochar pyrolytically produced from municipal solid wastes for aqueous As (V) removal: adsorption property and its improvement with KOH activation. Bioresource technology, 169: 622-629. Khalid S., Shahid M., Niazi N.K., Murtaza B., Bibi I., and Dumat C. 2017. A comparison of technologies for remediation of heavy metal contaminated soils. Journal of Geochemical Exploration, 182: 247-268. Lata S., and Samadder S.R. 2016. Removal of arsenic from water using nano adsorbents and challenges: a review. Journal of environmental management, 166: 387-406. Li H., Dong X., da Silva E.B., de Oliveira L.M., Chen Y., and Ma L.Q. 2017. Mechanisms of metal sorption by biochars: biochar characteristics and modifications. Chemosphere, 178:466-478. Li Y., Zhang F.S., and Xiu F.R. 2009. Arsenic (V) removal from aqueous system using adsorbent developed from a high iron-containing fly ash. Science of the total environment, 407(21): 5780-5786. Lin L., Qiu W., Wang D., Huang Q., Song Z., and Chau H.W. 2017. Arsenic removal in aqueous solution by a novel Fe-Mn modified biochar composite: characterization and mechanism. Ecotoxicology and environmental safety, 144, pp.514-521. Litter M.I., Morgada M.E., and Bundschuh J. 2010. Possible treatments for arsenic removal in Latin American waters for human consumption. Environmental Pollution, 158(5): 1105-1118. Lu H., Zhu Z., Zhang H., Zhu J., and Qiu Y. 2015. Simultaneous removal of arsenate and antimonate in simulated and practical water samples by adsorption onto Zn/Fe layered double hydroxide. Chemical Engineering Journal, 276, pp.365-375. Ma J., Sengupta M.K., Yuan D., and Dasgupta P.K. 2014. Speciation and detection of arsenic in aqueous samples: a review of recent progress in non-atomic spectrometric methods. Analytica Chimica Acta, 831: 1-23. Mahimairaja S., Bolan N.S., Adriano D.C., and Robinson B. 2005. Arsenic contamination and its risk management in complex environmental settings. Advances in Agronomy, 86: 1-82. Mandal B.K., and Suzuki K.T. 2002. Arsenic round the world: a review. Talanta, 58(1): 201-235. Meng Z., Lv F., Li X., Zhang Q., Chu P.K., Komarneni S., and Zhang Y. 2016. Simultaneous arsenate and alkali removal from alkaline wastewater by in-situ formation of Zn–Al layered double hydroxide. Microporous and Mesoporous Materials, 227, pp.137-143. Mirzaei N., Reyhanitabar A., Oustan Sh., and Haghighat-Afshar M. 2014. Interactive Effects of Arsenic and Phosphorus on the Uptake of Calcium, Magnesium and Potassium by Wheat (Triticum aestivum) and Marigold (Tagestes erecta). Applied Soil Research, 2(1): 43-58. (In Persian) Mohamadi S. 2019. Spatial distribution analysis of copper, zinc and arsenic heavy metals in the soil of surrounding areas of Khatoon-abad copper smelter industry. Applied Soil Research, 6(4): 84-96. (In Persian) Mondal P., Bhowmick S., Chatterjee D., Figoli A., and Van der Bruggen B. 2013. Remediation of inorganic arsenic in groundwater for safe water supply: a critical assessment of technological solutions. Chemosphere, 92(2): 157-170. Naidu R., Smith E., Owens G., and Bhattacharya P. 2006. Managing arsenic in the environment: from soil to human health. CSIRO publishing. Najib N., and Christodoulatos C. 2019. Removal of arsenic using functionalized cellulose nanofibrils from aqueous solutions. Journal of hazardous materials, 367, pp.256-266. Navarathna C.M., Karunanayake A.G., Gunatilake S.R., Pittman Jr C.U., Perez F., Mohan D., and Mlsna T., 2019. Removal of Arsenic (III) from water using magnetite precipitated onto Douglas fir biochar. Journal of environmental management, 250:109429. Niazi N.K., Bibi I., Shahid M., Ok Y.S., Shaheen S.M., Rinklebe J., Wang H., Murtaza B., Islam E., Nawaz M.F., and Lüttge A. 2018. Arsenic removal by Japanese oak wood biochar in aqueous solutions and well water: Investigating arsenic fate using integrated spectroscopic and microscopic techniques. Science of the Total Environment, 621: 1642-1651. Nriagu J.O., Bhattacharya P., Mukherjee A.B., Bundschuh J., Zevenhoven R., and Loeppert R.H. 2007. Arsenic in soil and groundwater: an overview. Trace Metals and other Contaminants in the Environment, 9: 3-60. Padmavathiamma P.K., and Li L.Y. 2007. Phytoremediation technology: hyper-accumulation metals in plants. Water, Air, and Soil Pollution, 184(1-4): 105-126. Pal P. 2015. Groundwater arsenic remediation: treatment technology and scale UP. Butterworth-Heinemann. Pallier V., Feuillade-Cathalifaud G., Serpaud B., and Bollinger J.C. 2010. Effect of organic matter on arsenic removal during coagulation/flocculation treatment. Journal of Colloid and Interface Science, 342(1), pp.26-32. Pan Y.F., Chiou C.T., and Lin T.F. 2010. Adsorption of arsenic (V) by iron-oxide-coated diatomite (IOCD). Environmental Science and Pollution Research, 17(8): 1401-1410. Pehlivan E., Tran T.H., Ouédraogo W.K.I., Schmidt C., Zachmann D., and Bahadir M., 2013. Removal of As (V) from aqueous solutions by iron coated rice husk. Fuel processing technology, 106: 511-517. Pickering I.J., Prince R.C., George M.J., Smith R.D., George G.N., and Salt D.E. 2000. Reduction and coordination of arsenic in Indian mustard. Plant Physiology, 122(4): 1171-1178. Ravenscroft P., Brammer H., and Richards K. 2009. Arsenic pollution: a global synthesis (Vol. 28). John Wiley and Sons. Ren Z., Zhang G., and Chen J.P. 2011. Adsorptive removal of arsenic from water by an iron–zirconium binary oxide adsorbent. Journal of colloid and interface science, 358(1), pp.230-237. Rosales E., Meijide J., Pazos M., and Sanromán M.A. 2017. Challenges and recent advances in biochar as low-cost biosorbent: from batch assays to continuous-flow systems. Bioresource technology, 246: 176-192. Roy P. 2015. Modeling of arsenic removal from drinking water through fixed bed column operation by law cost adsorbeast. Rukh S., Akhtar M.S., Mehmood A., Hassan S., Khan K.S., Naqvi S.M., and Imran M. 2017. Arsenate and arsenite adsorption in relation with chemical properties of alluvial and loess soils. Journal of the Serbian Chemical Society, 82(7-8): 943-954. Sahuquillo A., Lopez-Sanchez J.F., Gleyzes C., Ruban V., Comans R., Rauret G., Ure A., Gomez A., Barahona E., Muntau H., and Tellier S. 2007. Methodologies for soil and sediment fractionation studies. Royal Society of Chemistry. Samsuri A.W., Sadegh-Zadeh F., and Seh-Bardan B.J. 2013. Adsorption of As (III) and As (V) by Fe coated biochars and biochars produced from empty fruit bunch and rice husk. Journal of Environmental Chemical Engineering, 1(4): 981-988. Sarkar A., and Paul B. 2016. The global menace of arsenic and its conventional remediation-A critical review. Chemosphere, 158: 37-49. Seidel A., Waypa J.J., and Elimelech M. 2001. Role of charge (Donnan) exclusion in removal of arsenic from water by a negatively charged porous nanofiltration membrane. Environmental Engineering Science, 18(2): 105-113. Shakoor M.B., Niazi N.K., Bibi I., Shahid M., Sharif F., Bashir S., Shaheen S.M., Wang H., Tsang D.C., Ok Y.S., and Rinklebe J. 2018. Arsenic removal by natural and chemically modified water melon rind in aqueous solutions and groundwater. Science of the Total Environment, 645: 1444-1455. Shukla A., and Srivastava S. 2017. Emerging aspects of bioremediation of arsenic. In Green Technologies and Environmental Sustainability: 395-407. Springer, Cham. Simmler M., Suess E., Christl I., Kotsev T., and Kretzschmar R. 2016. Soil-to-plant transfer of arsenic and phosphorus along a contamination gradient in the mining-impacted Ogosta River floodplain. Science of the Total Environment, 572: 742-754. Singh R., Singh S., Parihar P., Singh V.P., and Prasad S.M. 2015. Arsenic contamination, consequences and remediation techniques: a review. Ecotoxicology and environmental safety, 112: 247-270. Smedley P.L., and Kinniburgh D.G. 2002. A review of the source, behaviour and distribution of arsenic in natural waters. Applied geochemistry, 17(5): 517-568. Smith E.R.G., Naidu R., and Alston A.M. 1998. Arsenic in the soil environment (Doctoral dissertation, Academic Press) Song X., Zhou L., Zhang Y., Chen P., and Yang Z. 2019. A novel cactus-like Fe3O4/Halloysite nanocomposite for arsenite and arsenate removal from water. Journal of Cleaner Production, 224, pp.573-582. Susan A., Rajendran K., Sathyasivam K., and Krishnan U.M. 2019. An overview of plant-based interventions to ameliorate arsenic toxicity. Biomedicine and Pharmacotherapy, 109: 838-852. Tabaraki R., and Heidarizadi E. 2018. Simultaneous biosorption of Arsenic (III) and Arsenic (V): Application of multiple response optimizations. Ecotoxicology and environmental safety, 166: 35-41. Tanda S., Ličbinský R., Hegrová J., Faimon J., and Goessler W. 2019. Arsenic speciation in aerosols of a respiratory therapeutic cave: A first approach to study arsenicals in ultrafine particles. Science of the Total Environment, 651: 1839-1848. Thornton I., and Farago M. 1997. The geochemistry of arsenic. In Arsenic: 1-16. Springer, Dordrecht. Uddin M.T., Mozumder M.S.I., Figoli A., Islam M.A., and Drioli E. 2007. Arsenic removal by conventional and membrane technology: An overview. Wang S., Gao B., Li Y., Creamer A.E., and He F. 2017. Adsorptive removal of arsenate from aqueous solutions by biochar supported zero-valent iron nanocomposite: batch and continuous flow tests. Journal of hazardous materials, 322: 172-181. Wang X., and Ma L.Q. 2014. Recent advances in phytoremediation of arsenic-contaminated soils. In-situ Remediation of Arsenic-contaminated Sites. CRC Press, Taylor and Francis Group, Boca Raton: 69-86. Wenzel W.W., Kirchbaumer N., Prohaska T., Stingeder G., Lombi E., and Adriano D.C. 2001. Arsenic fractionation in soils using an improved sequential extraction procedure. Analytica chimica acta, 436(2): 309-323. WHO N., 2011. Nitrite in drinking-water. Background document for preparation of WHO Guidelines for drinkingwater quality. World Health Organization, Geneva. Xia D., Tan F., Zhang C., Jiang X., Chen Z., Li H., Zheng Y., Li Q., and Wang Y. 2016. ZnCl2-activated biochar from biogas residue facilitates aqueous As (III) removal. Applied Surface Science, 377: 361-369 Yao Z., Li J., Xie H., and Yu C. 2012. Review on remediation technologies of soil contaminated by heavy metals. Procedia Environmental Sciences, 16: 722-729. Yoon J., Amy G., Chung J., Sohn J., and Yoon Y. 2009. Removal of toxic ions (chromate, arsenate, and perchlorate) using reverse osmosis, nanofiltration, and ultrafiltration membranes. Chemosphere, 77(2): 228-235. Yoon K., Cho D.W., Tsang D.C., Bolan N., Rinklebe J., and Song H. 2017. Fabrication of engineered biochar from paper mill sludge and its application into removal of arsenic and cadmium in acidic water. Bioresource technology, 246: 69-75. Zanzo E., Balint R., Prati M., Celi L., Barberis E., Violante A., and Martin M. 2017. Aging and arsenite loading control arsenic mobility from ferrihydrite-arsenite coprecipitates. Geoderma, 299: 91-100. Zeng M., Liao B., Lei M., Zhang Y., Zeng Q., and Ouyang B. 2008. Arsenic removal from contaminated soil using phosphoric acid and phosphate. Journal of Environmental Sciences, 20(1): 75-79. Zhou Q., Teng Y., and Liu Y. 2017. A study on soil-environmental quality criteria and standards of arsenic. Applied Geochemistry, 77: 158-166. | ||
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