全氟辛酸污染的吸附去除技术综述
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吴玉,潘江,王宇航
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1.北京建工环境修复股份有限公司,北京,100020;2.江苏长江地质勘查院,江苏南京,210000;3.江苏盖亚环境科技股份有限公司,江苏苏州,215000
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摘要:作为一种新型有机污染物,全氟辛酸(Per?uorooctanoic acid,简称PFOA)具有持久性、生物累积性和多重毒性,并广泛存在于各类环境介质中,可能危害人体健康,造成严重的生态风险,其污染问题不容小觑。吸附技术是目前去除全氟化合物的常用方法之一,本文综述了PFOA在不同吸附剂上的吸附作用,详细介绍了几种主要吸附剂类型、吸附机理及吸附作用的主要影响因素。PFOA的吸附作用受吸附剂的物理化学性质影响(如比表面积、孔径大小、表面官能团等),传统的矿物质(二氧化硅、蒙脱石等)及活性炭材料对PFOA的吸附效果较差,离子交换树脂、分子印迹化合物及多种新型复合吸附剂的吸附去除效果较好。静电作用和疏水作用是PFOA在不同吸附剂上的主要吸附机理。本综述有助于制备高效的PFOA吸附剂,为进一步发展PFOA污染修复技术奠定理论和实践基础。关键字: 全氟辛酸;吸附剂;吸附去除
关健词:全氟辛酸;吸附剂;吸附去除
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A Review of Adsorption Removal Technologies for Perfluorooctanoic Acid Contamination
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Yu Wu,Jiang Pan,Yuhang Wang
1.BCEG Environmental Remediation Co., LTD., Beijing 100020,China;;2. Jiangsu changjiang Geological Exploration Institute, Nanjing Jiangsu 210000 ,China;;3. Jiangsu GaiYa Environmental Technology Co., LTD., Suzhou Jiangsu 215000,China
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Abstract:As a new type of organic pollutant, perfluorooctanoic acid (PFOA for short) is characterized by persistence, bioaccumulation and multiple toxicities, and is widely present in various environmental media. It may endanger human health and cause serious ecological risks. Its pollution problem should not be underestimated. Adsorption technology is one of the commonly used methods for removing perfluorinated compounds at present. This paper reviews the adsorption effect of PFOA on different adsorbents, and introduces in detail several main types of adsorbents, adsorption mechanisms and the main influencing factors of adsorption effect. The adsorption effect of PFOA is influenced by the physical and chemical properties of the adsorbent (such as specific surface area, pore size, surface functional groups, etc.). Traditional minerals (silica, montmorillonite, etc.) and activated carbon materials have poor adsorption effects on PFOA, while ion exchange resins, molecularly imprinted compounds and various new composite adsorbents have better adsorption and removal effects. Electrostatic interaction and hydrophobic interaction are the main adsorption mechanisms of PFOA on different adsorbents. This review is conducive to the preparation of highly efficient PFOA adsorbents and lays a theoretical and practical foundation for the further development of PFOA pollution remediation technologies.
Keywords : Perfluorooctanoic acid;adsorbent;adsorption removal
参考文献 [1] R.C. Buck, J. Franklin, U. Berger, J.M. Conder, I.T. Cousins, P. de Voogt, A.A. Jensen, K. Kannan, S.A. Mabury, S.P. van Leeuwen, Perfluoroalkyl and polyfluoroalkyl substances in the environment: terminology, classification, and origins, Integr Environ Assess Manag, 2011, 7(4), 513-41. [2] G. Ding, W.J.G.M. Peijnenburg, Physicochemical Properties and Aquatic Toxicity of Poly- and Perfluorinated Compounds, Critical Reviews in Environmental Science and Technology, 2013, 43(6), 598-678. [3] A.G. Paul, K.C. Jones, A.J. Sweetman, A First Global Production, Emission, And Environmental Inventory For Perfluorooctane Sulfonate, ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2009, 43(2), 386-392. [4] L. Ahrens, M. Bundschuh, Fate and effects of poly- and perfluoroalkyl substances in the aquatic environment: a review, Environ Toxicol Chem, 2014, 33(9), 1921-9. [5] . [6] K. Prevedouros, I.T. Cousins, R.C. Buck, S.H. Korzeniowski, Sources, fate and transport of perfluorocarboxylates, ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2006, 40(1), 32-44. [7] K.E. Pelch, A. Reade, T.A.M. Wolffe, C.F. Kwiatkowski, PFAS health effects database: Protocol for a systematic evidence map, Environ Int, 2019, 130, 104851. [8] M.P. Krafft, J.G. Riess, Selected physicochemical aspects of poly- and perfluoroalkylated substances relevant to performance, environment and sustainability-part one, Chemosphere, 2015, 129, 4-19. [9] L. Vierke, U. Berger, I.T. Cousins, Estimation of the acid dissociation constant of perfluoroalkyl carboxylic acids through an experimental investigation of their water-to-air transport, Environ Sci Technol, 2013, 47(19), 11032-9. [10] C.A. Moody, J.A. Field, Perfluorinated surfactants and the environmental implications of their use in fire-fighting foams, ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2000, 34(18), 3864-3870. [11] 杨帆, 施致雄, 全氟辛烷磺酸和全氟辛酸的人群暴露水平和毒性研究进展, 环境与健康杂志, 2014, 31(8), 730-734. [12] L. Zhang, J. Niu, Y. Li, Y. Wang, D. Sun, Evaluating the sub-lethal toxicity of PFOS and PFOA using rotifer Brachionus calyciflorus, Environ Pollut, 2013, 180, 34-40. [13] S. Yan, H. Zhang, J. Wang, F. Zheng, J. Dai, Perfluorooctanoic acid exposure induces endoplasmic reticulum stress in the liver and its effects are ameliorated by 4-phenylbutyrate, Free Radic Biol Med, 2015, 87, ?300-11. [14] E. Mariussen, Neurotoxic effects of perfluoroalkylated compounds: mechanisms of action and environmental relevance, Arch Toxicol, 2012, 86(9), 1349-67. [15] 苏畅, 姜晨, 张彩丽, 管璘, 全氟辛酸 (PFOA) 化学品污染的应对浅析——以电影《 黑水》 杜邦事件为例, 世界环境, 2020, 4, 60-63. [16] E.M. Sunderland, X.C. Hu, C. Dassuncao, A.K. Tokranov, C.C. Wagner, J.G. Allen, A review of the pathways of human exposure to poly- and perfluoroalkyl substances (PFASs) and present understanding of health effects, J Expo Sci Environ Epidemiol, 2019, 29(2), 131-147. [17] G.T. Ankley, P. Cureton, R.A. Hoke, M. Houde, A. Kumar, J. Kurias, R. Lanno, C. McCarthy, J. Newsted, C.J. Salice, B.E. Sample, M.S. Sepulveda, J. Steevens, S. Valsecchi, Assessing the Ecological Risks of Per- and Polyfluoroalkyl Substances: Current State-of-the Science and a Proposed Path Forward, Environ Toxicol Chem, 2021, 40(3), 564-605. [18] 孙腾飞, 广州, 佛山工业区周边土壤及蔬菜中全氟化合物的污染特征, 暨南大学, 2017. [19] M.H. Russell, R.L. Waterland, F. Wong, Calculation of chemical elimination half-life from blood with an ongoing exposure source: the example of perfluorooctanoic acid (PFOA), Chemosphere, 2015, 129, 210-6. [20] H. Zhu, K. Kannan, Distribution and partitioning of perfluoroalkyl carboxylic acids in surface soil, plants, and earthworms at a contaminated site, Sci Total Environ, 2019, 647, 954-961. [21] S. Falk, T. Stahl, A. Fliedner, H. Rudel, K. Tarricone, H. Brunn, J. Koschorreck, Levels, accumulation patterns and retrospective trends of perfluoroalkyl acids (PFAAs) in terrestrial ecosystems over the last three decades, Environ Pollut, 2019, 246, 921-931. [22] 梅胜放, 我国 PFOS/PFOA 的生产, 应用以及国内外标准现状, 有机氟工业, 2008, (1), 21-25. [23] 徐晓莉, PFOA 类物质在我国的生产和加工使用现状, 化工管理, 2017, (25), 54-55. [24] A.B. Lindstrom, M.J. Strynar, E.L. Libelo, Polyfluorinated compounds: past, present, and future, Environ Sci Technol, 2011, 45(19), 7954-61. [25] T. Wang, P. Wang, J. Meng, S. Liu, Y. Lu, J.S. Khim, J.P. Giesy, A review of sources, multimedia distribution and health risks of perfluoroalkyl acids (PFAAs) in China, Chemosphere, 2015, 129, 87-99. [26] 宋璐宁, 陆志波, 尹志高, PFOA 与 PFOS 环境排放与控制的综述, 四川环境, 2015, 34(2), 149-153. [27] Y. Li, D.P. Oliver, R.S. Kookana, A critical analysis of published data to discern the role of soil and sediment properties in determining sorption of per and polyfluoroalkyl substances (PFASs), Sci Total Environ, 2018, 628-629, 110-120. [28] P. Zareitalabad, J. Siemens, M. Hamer, W. Amelung, Perfluorooctanoic acid (PFOA) and perfluorooctanesulfonic acid (PFOS) in surface waters, sediments, soils and wastewater - A review on concentrations and distribution coefficients, Chemosphere, 2013, 91(6), 725-32. [29] Y. Yao, S. Chang, Y. Zhao, J. Tang, H. Sun, Z. Xie, Per- and poly-fluoroalkyl substances (PFASs) in the urban, industrial, and background atmosphere of Northeastern China coast around the Bohai Sea: Occurrence, partitioning, and seasonal variation, Atmospheric Environment, 2017, 167, 150-158. [30] F. Xiao, M.F. Simcik, T.R. Halbach, J.S. Gulliver, Perfluorooctane sulfonate (PFOS) and perfluorooctanoate (PFOA) in soils and groundwater of a U.S. metropolitan area: migration and implications for human exposure, Water Res, 2015, 72, 64-74. [31] H. Hamid, L.Y. Li, J.R. Grace, Review of the fate and transformation of per- and polyfluoroalkyl substances (PFASs) in landfills, Environ Pollut, 2018, 235, 74-84. [32] D.T. Adamson, A. Nickerson, P.R. Kulkarni, C.P. Higgins, J. Popovic, J. Field, A. Rodowa, C. Newell, P. DeBlanc, J.J. Kornuc, Mass-Based, Field-Scale Demonstration of PFAS Retention within AFFF-Associated Source Areas, Environ Sci Technol, 2020, 54(24), 15768-15777. [33] X. Liu, L. Li, L. Gu, Z. Hua, Y. Zhang, H. Xue, Distribution and release of perfluorinated compounds (PFCs) in water-sediment systems: The effect of confluence channels, Science of The Total Environment, 2021, 775. [34] K. Rankin, S.A. Mabury, T.M. Jenkins, J.W. Washington, A North American and global survey of perfluoroalkyl substances in surface soils: Distribution patterns and mode of occurrence, Chemosphere, 2016, 161, 333-341. [35] W. Liu, Y. Jin, X. Quan, K. Sasaki, N. Saito, S.F. Nakayama, I. Sato, S. Tsuda, Perfluorosulfonates and perfluorocarboxylates in snow and rain in Dalian, China, Environ Int, 2009, 35(4), 737-42. [36] S.H. Seo, M.H. Son, E.S. Shin, S.D. Choi, Y.S. Chang, Matrix-specific distribution and compositional profiles of perfluoroalkyl substances (PFASs) in multimedia environments, J Hazard Mater, 2019, 364, 19-27. [37] K.Y. Kwok, E. Yamazaki, N. Yamashita, S. Taniyasu, M.B. Murphy, Y. Horii, G. Petrick, R. Kallerborn, K. Kannan, K. Murano, P.K. Lam, Transport of perfluoroalkyl substances (PFAS) from an arctic glacier to downstream locations: implications for sources, Sci Total Environ, 2013, 447, 46-55. [38] Z. Liu, Y. Lu, T. Wang, P. Wang, Q. Li, A.C. Johnson, S. Sarvajayakesavalu, A.J. Sweetman, Risk assessment and source identification of perfluoroalkyl acids in surface and ground water: Spatial distribution around a mega-fluorochemical industrial park, China, Environ Int, 2016, 91, 69-77. [39] S. Chen, X.C. Jiao, N. Gai, X.J. Li, X.C. Wang, G.H. Lu, H.T. Piao, Z. Rao, Y.L. Yang, Perfluorinated compounds in soil, surface water, and groundwater from rural areas in eastern China, Environ Pollut, 2016, 211, 124-31. [40] M. Filipovic, H. Laudon, M.S. McLachlan, U. Berger, Mass Balance of Perfluorinated Alkyl Acids in a Pristine Boreal Catchment, Environ Sci Technol, 2015, 49(20), 12127-35. [41] F. Xiao, Emerging poly- and perfluoroalkyl substances in the aquatic environment: A review of current literature, Water Res, 2017, 124, 482-495. [42] M.J. Strynar, A.B. Lindstrom, S.F. Nakayama, P.P. Egeghy, L.J. Helfant, Pilot scale application of a method for the analysis of perfluorinated compounds in surface soils, Chemosphere, 2012, 86(3), 252-7. [43] X. Dauchy, V. Boiteux, A. Colin, J. Hemard, C. Bach, C. Rosin, J.F. Munoz, Deep seepage of per- and polyfluoroalkyl substances through the soil of a firefighter training site and subsequent groundwater contamination, Chemosphere, 2019, 214, 729-737. [44] M. Filipovic, A. Woldegiorgis, K. Norstrom, M. Bibi, M. Lindberg, A.H. Osteras, Historical usage of aqueous film forming foam: a case study of the widespread distribution of perfluoroalkyl acids from a military airport to groundwater, lakes, soils and fish, Chemosphere, 2015, 129, 39-45. [45] F. Li, C. Zhang, Y. Qu, J. Chen, L. Chen, Y. Liu, Q. Zhou, Quantitative characterization of short- and long-chain perfluorinated acids in solid matrices in Shanghai, China, Sci Total Environ, 2010, 408(3), 617-23. [46] S. Fujii, C. Polprasert, S. Tanaka, N.P. Hong Lien, Y. Qiu, New POPs in the water environment: distribution, bioaccumulation and treatment of perfluorinated compounds–a review paper, Journal of Water Supply: Research and Technology—AQUA, 2007, 56(5), 313-326. [47] D. Zhang, Q. He, M. Wang, W. Zhang, Y. Liang, Sorption of perfluoroalkylated substances (PFASs) onto granular activated carbon and biochar, Environ Technol, 2021, 42(12), 1798-1809. [48] X. Xiao, B.A. Ulrich, B. Chen, C.P. Higgins, Sorption of Poly- and Perfluoroalkyl Substances (PFASs) Relevant to Aqueous Film-Forming Foam (AFFF)-Impacted Groundwater by Biochars and Activated Carbon, Environ Sci Technol, 2017, 51(11), 6342-6351. [49] Y. Zhi, J. Liu, Sorption and desorption of anionic, cationic and zwitterionic polyfluoroalkyl substances by soil organic matter and pyrogenic carbonaceous materials, Chemical Engineering Journal, 2018, 346, 682-691. [50] Y. Qu, C. Zhang, F. Li, X. Bo, G. Liu, Q. Zhou, Equilibrium and kinetics study on the adsorption of perfluorooctanoic acid from aqueous solution onto powdered activated carbon, J Hazard Mater, 2009, 169(1-3), 146-52. [51] Y. Zhi, J. Liu, Adsorption of perfluoroalkyl acids by carbonaceous adsorbents: Effect of carbon surface chemistry, Environ Pollut, 2015, 202, 168-76. [52] C.C. Murray, H. Vatankhah, C.A. McDonough, A. Nickerson, T.T. Hedtke, T.Y. Cath, C.P. Higgins, C.L. Bellona, Removal of per- and polyfluoroalkyl substances using super-fine powder activated carbon and ceramic membrane filtration, J Hazard Mater, 2019, 366, 160-168. [53] Z. Du, S. Deng, Y. Bei, Q. Huang, B. Wang, J. Huang, G. Yu, Adsorption behavior and mechanism of perfluorinated compounds on various adsorbents--a review, J Hazard Mater, 2014, 274, 443-54. [54] A. Zaggia, L. Conte, L. Falletti, M. Fant, A. Chiorboli, Use of strong anion exchange resins for the removal of perfluoroalkylated substances from contaminated drinking water in batch and continuous pilot plants, Water Res, 2016, 91, 137-46. [55] Q. Yu, R. Zhang, S. Deng, J. Huang, G. Yu, Sorption of perfluorooctane sulfonate and perfluorooctanoate on activated carbons and resin: Kinetic and isotherm study, Water Res, 2009, 43(4), 1150-8. [56] A. Maimaiti, S. Deng, P. Meng, W. Wang, B. Wang, J. Huang, Y. Wang, G. Yu, Competitive adsorption of perfluoroalkyl substances on anion exchange resins in simulated AFFF-impacted groundwater, Chemical Engineering Journal, 2018, 348, 494-502. [57] S. Deng, Q. Yu, J. Huang, G. Yu, Removal of perfluorooctane sulfonate from wastewater by anion exchange resins: effects of resin properties and solution chemistry, Water Res, 2010, 44(18), 5188-95. [58] J. Qian, M. Shen, P. Wang, C. Wang, J. Hu, J. Hou, Y. Ao, H. Zheng, K. Li, J. Liu, Co-adsorption of perfluorooctane sulfonate and phosphate on boehmite: Influence of temperature, phosphate initial concentration and pH, Ecotoxicol Environ Saf, 2017, 137, 71-77. [59] C.Y. Tang, Q. Shiang Fu, D. Gao, C.S. Criddle, J.O. Leckie, Effect of solution chemistry on the adsorption of perfluorooctane sulfonate onto mineral surfaces, Water Res, 2010, 44(8), 2654-62. [60] P. Punyapalakul, K. Suksomboon, P. Prarat, S. Khaodhiar, Effects of Surface Functional Groups and Porous Structures on Adsorption and Recovery of Perfluorinated Compounds by Inorganic Porous Silicas, Separation Science and Technology, 2013, 48(5), 775-788. [61] Z. Du, S. Deng, S. Zhang, B. Wang, J. Huang, Y. Wang, G. Yu, B. Xing, Selective and High Sorption of Perfluorooctanesulfonate and Perfluorooctanoate by Fluorinated Alkyl Chain Modified Montmorillonite, The Journal of Physical Chemistry C, 2016, 120(30), 16782-16790. [62] P.H. Chang, W.T. Jiang, Z. Li, Removal of perfluorooctanoic acid from water using calcined hydrotalcite - A mechanistic study, J Hazard Mater, 2019, 368, 487-495. [63] W.A. Lawal, H. Choi, Feasibility Study on the Removal of Perfluorooctanoic Acid by Using Palladium-Doped Nanoscale Zerovalent Iron, Journal of Environmental Engineering, 2018, 144(11). [64] F. Cao, L. Wang, Y. Tian, F. Wu, C. Deng, Q. Guo, H. Sun, S. Lu, Synthesis and evaluation of molecularly imprinted polymers with binary functional monomers for the selective removal of perfluorooctanesulfonic acid and perfluorooctanoic acid, J Chromatogr A, 2017, 1516, 42-53. [65] X. Liang, M.A. Gondal, X. Chang, Z.H. Yamani, N. Li, H. Lu, G. Ji, Facile preparation of magnetic separable powdered-activated-carbon/Ni adsorbent and its application in removal of perfluorooctane sulfonate (PFOS) from aqueous solution, J Environ Sci Health A Tox Hazard Subst Environ Eng, 2011, 46(13), 1482-90. [66] C. Li, A. Schaffer, J.M. Sequaris, K. Laszlo, A. Toth, E. Tombacz, H. Vereecken, R. Ji, E. Klumpp, Surface-associated metal catalyst enhances the sorption of perfluorooctanoic acid to multi-walled carbon nanotubes, J Colloid Interface Sci, 2012, 377(1), 342-6. [67] S. Lath, D.A. Navarro, D. Losic, A. Kumar, M.J. McLaughlin, Sorptive remediation of perfluorooctanoic acid (PFOA) using mixed mineral and graphene/carbon-based materials, Environmental Chemistry, 2018, 15(8). [68] P. Meng, X. Fang, A. Maimaiti, G. Yu, S. Deng, Efficient removal of perfluorinated compounds from water using a regenerable magnetic activated carbon, Chemosphere, 2019, 224, 187-194. [69] A.H. Karoyo, L.D. Wilson, Tunable macromolecular-based materials for the adsorption of perfluorooctanoic and octanoic acid anions, J Colloid Interface Sci, 2013, 402, 196-203. [70] S. Deng, Y.Q. Zheng, F.J. Xu, B. Wang, J. Huang, G. Yu, Highly efficient sorption of perfluorooctane sulfonate and perfluorooctanoate on a quaternized cotton prepared by atom transfer radical polymerization, Chemical Engineering Journal, 2012, 193-194, 154-160. [71] M. Kah, D. Oliver, R. Kookana, Sequestration and potential release of PFAS from spent engineered sorbents, Sci Total Environ, 2021, 765, 142770. [72] P.J. Huang, M. Hwangbo, Z. Chen, Y. Liu, J. Kameoka, K.H. Chu, Reusable Functionalized Hydrogel Sorbents for Removing Long- and Short-Chain Perfluoroalkyl Acids (PFAAs) and GenX from Aqueous Solution, ACS Omega, 2018, 3(12), 17447-17455. [73] T.M.H. Nguyen, J. Braunig, K. Thompson, J. Thompson, S. Kabiri, D.A. Navarro, R.S. Kookana, C. Grimison, C.M. Barnes, C.P. Higgins, M.J. McLaughlin, J.F. Mueller, Influences of Chemical Properties, Soil Properties, and Solution pH on Soil-Water Partitioning Coefficients of Per- and Polyfluoroalkyl Substances (PFASs), Environ Sci Technol, 2020, 54(24), 15883-15892. [74] G. Liu, B.A. Stewart, K. Yuan, S. Ling, M. Zhang, G. Wang, K. Lin, Comprehensive adsorption behavior and mechanism of PFOA and PFCs in various subsurface systems in China, Sci Total Environ, 2021, 794, 148463. [75] F. Wang, C. Liu, K. Shih, Adsorption behavior of perfluorooctanesulfonate (PFOS) and perfluorooctanoate (PFOA) on boehmite, Chemosphere, 2012, 89(8), 1009-14. [76 F. Wang, K. Shih, Adsorption of perfluorooctanesulfonate (PFOS) and perfluorooctanoate (PFOA) on alumina: influence of solution pH and cations, Water Res, 2011, 45(9), 2925-30. [77] K.-H. Yang, Y.-C. Lin, M.-D. Fang, C.-H. Wu, S.C. Panchangam, P.-K.A. Hong, C.-F. Lin, Sorption of Perfluorooctanoic Acid (PFOA) onto Sediment in the Presence of Dissolved Natural Organics, Separation Science and Technology, 2013, 48(10), 1473-1478. [78] J. Yu, L. Lv, P. Lan, S. Zhang, B. Pan, W. Zhang, Effect of effluent organic matter on the adsorption of perfluorinated compounds onto activated carbon, J Hazard Mater, 2012, 225-226, 99-106.
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