大气颗粒物水溶性重金属元素研究进展

郑乃嘉, 谭吉华, 段菁春, 马永亮, 贺克斌. 大气颗粒物水溶性重金属元素研究进展[J]. 环境化学, 2014, 33(12): 2109-2116. doi: 10.7524/j.issn.0254-6108.2014.12.005
引用本文: 郑乃嘉, 谭吉华, 段菁春, 马永亮, 贺克斌. 大气颗粒物水溶性重金属元素研究进展[J]. 环境化学, 2014, 33(12): 2109-2116. doi: 10.7524/j.issn.0254-6108.2014.12.005
ZHENG Naijia, TAN Jihua, DUAN Jingchun, MA Yongliang, HE Kebin. Research progress on water-soluble heavy metal in atmospheric particulate mattters[J]. Environmental Chemistry, 2014, 33(12): 2109-2116. doi: 10.7524/j.issn.0254-6108.2014.12.005
Citation: ZHENG Naijia, TAN Jihua, DUAN Jingchun, MA Yongliang, HE Kebin. Research progress on water-soluble heavy metal in atmospheric particulate mattters[J]. Environmental Chemistry, 2014, 33(12): 2109-2116. doi: 10.7524/j.issn.0254-6108.2014.12.005

大气颗粒物水溶性重金属元素研究进展

  • 基金项目:

    国家自然科学基金(41475116, 41275134), 国家自然科学基金重大项目(21190054)和国家环境保护大气复合污染来源与控制重点实验室基金资助.

Research progress on water-soluble heavy metal in atmospheric particulate mattters

  • Fund Project:
  • 摘要: 以As、Cd、Cr、Cu、Ni、Mn、V、Pb和Zn为研究对象,总结历史及自身研究结果,从大气颗粒物水溶性重金属的分析方法、浓度水平、化合物形态、水溶性及其影响因素等方面进行分析.结果表明,发展中国家大气颗粒物水溶性重金属浓度较高,国内水溶性Zn和As污染严重,特别是As已超过国家空气质量标准中的浓度限值;大气中Zn、Pb、Cd、As和V的浓度和水溶性都较高(37.69%—58.65%),应受到广泛关注;大气颗粒物中重金属的水溶性主要受颗粒物粒径大小、酸碱性、重金属与颗粒物结合方式、金属化合物形态和来源的影响.研究结果可以为大气重金属污染控制和人体健康影响评估的开展提供理论基础.
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  • [1] 方凤满.中国大气颗粒物中金属元素地球化学行为研究[J]. 生态环境学报,2010,19(4):979-984
    [2] 谭吉华,段菁春.中国大气颗粒物中重金属污染、来源及控制[J]. 中国科学院研究生院学报,2013,30(2):145-155
    [3] Gao X, Yu Q,Chen L.Health effects of airborne particulate matter trace elements[J]. Biomedical and Environmental Sciences,2005,18(5):349-354
    [4] Niu J,Rasmussen P E,Hassan N M,et al.Concentration distribution and bioaccessibility of trace elements in nano and fine urban airborne particulate matter: Influence of particle size[J]. Water,Air,& Soil Pollution,2010,213(1/4):211-225
    [5] 冯茜丹,党志,黄伟林.广州市秋季PM2.5中重金属的污染水平与化学形态分析[J]. 环境科学,2008,29(3):569-753
    [6] Adamson I,Prieditis H,Hedgecock C,et al.Zinc is the toxic factor in the lung response to an atmospheric particulate sample[J]. Toxicology and Applied Pharmacology,2000,166(2):111-119
    [7] Heal M R,Hibbs L R,Agius R M,et al.Total and water-soluble trace metal content of urban background PM10,PM2.5 and black smoke in Edinburgh,UK[J]. Atmospheric Environment,2005,39(8):1417-1430
    [8] Limbeck A,Wagner C,Lendl B,et al.Determination of water soluble trace metals in airborne particulate matter using a dynamic extraction procedure with on-line inductively coupled plasma optical emission spectrometric detection[J]. Analytica Chimica Acta,2012,750:111-119
    [9] Sato K,Tamura T,Furuta N.Partitioning between soluble and insoluble fractions of major and trace elements in size-classified airborne particulate matter collected in Tokyo[J].Journal of Environmental Management,2008,10(2):211-218
    [10] Annibaldi A,Truzzi C,Illuminati S,et al.Determination of water-soluble and insoluble (dilute-HCl-extractable) fractions of Cd,Pb and Cu in Antarctic aerosol by square wave anodic stripping voltammetry: Distribution and summer seasonal evolution at Terra Nova Bay (Victoria Land)[J]. Analytical and Bioanalytical Chemistry,2007,387(3):977-998
    [11] Karthikeyan S,Joshi U M,Balasubramanian R.Microwave assisted sample preparation for determining water-soluble fraction of trace elements in urban airborne particulate matter: Evaluation of bioavailability[J]. Analytica Chimica Acta,2006,576(1):23-30
    [12] Dick C,Stone V,Brown D,et al.Toxic and inflammatory effects of filters frequently used for the collection of airborne particulate matter[J]. Atmospheric Environment,2000,34(16):2587-2592
    [13] Birmili W,Allen A G,Bary F,et al. Trace metal concentrations and water solubility in size-fractionated atmospheric particles and influence of road traffic[J]. Environmental Science and Technology,2006,40:1144-1153
    [14] Wang G H,Huang L M,Gao S X,et al.Characterization of water-soluble species of PM10 and PM2.5 aerosols in urban area in Nanjing,China[J]. Atmospheric Environment,2002,36(8):1299-1307
    [15] Wang C F,Yang J Y,Ke C H.Multi-element analysis of airborne particulate matter by various spectrometric methods after microwave digestion[J]. Analytica Chimica Acta,1996,320(2):207-216
    [16] Mukhtar A,Limbeck A.On-line determination of water-soluble zinc in airborne particulate matter using a dynamic extraction procedure coupled to flame atomic absorption spectrometry[J]. Journal of Analytical Atomic Spectrometry,2010,25(7):1056-1062
    [17] Campa A M,Rosa J D,Rodas D,et al.Arsenic speciation study of PM2.5 in an urban area near a copper smelter[J]. Atmospheric Environment,2008,42(26):6487-6495
    [18] Wang S,Mulligan C N.Occurrence of arsenic contamination in Canada: Sources,behavior and distribution[J]. Science of the Total Environment,2006,366(2/3):701-721
    [19] Hedberg E,Gidhagen L,Johansson C. Source contributions to PM10 and arsenic concentrations in Central Chile using positive matrix factorization[J]. Atmospheric Environment,2005,39(3):549-561
    [20] 贺婷婷.北京市石景山区大气颗粒物中总砷及形态研究[D].湖南:南华大学硕士学位论文,2011
    [21] Hsu S C,Wong G T F,Gong G C,et al.Sources,solubility,and dry deposition of aerosol trace elements over the East China Sea[J]. Marine Chemistry,2010,120(1/4):116-127
    [22] Wang J,Guo P,Li X,et al.Source identification of lead pollution in the atmosphere of Shanghai City by analyzing single aerosol particles (SAP)[J]. Environmental Science and Technology,2000,34(10):1900-1905
    [23] Qureshi S,Dutkiewicz V A,Khan A R,et al.Elemental composition of PM2.5 aerosols in Queens,New York: Solubility and temporal trends[J]. Atmospheric Environment,2006,40:238-251
    [24] Berg T,Røyset O,Steinnes E.Trace elements in atmospheric precipitation at Norweigan background stations (1989—1990) measured by ICP-MS[J]. Atmospheric Environment,1994,28(21):3519-3536
    [25] Kaczynski S E,Kieber R J.Hydrophobic C18 bound organic complexes of chromium and their potential impact on the geochemistry of Cr in natural waters[J]. Environmental Science and Technology,1994,28(5):799-804
    [26] Dos Santos M,Gómez D,Dawidowski L,et al.Determination of water-soluble and insoluble compounds in size classified airborne particulate matter[J]. Microchemical Journal,2009,91(1):133-139
    [27] 邵龙义,沈蓉蓉,王静,等.澳门可吸入颗粒物的氧化性损伤能力及原因探讨[J]. 中国科学:地球科学,2013,56(6):1037-1043
    [28] 赵金平,谭吉华,毕新慧,等.广州市灰霾期间大气颗粒物中无机元素的质量浓度[J]. 环境化学,2008,27(3):322-326
    [29] 涛 余,程新彬,杨忠芳,等.辽宁省典型地区大气颗粒物重金属元素分布特征及对土地质量影响研究[J]. 地学前缘,2008,15(5):146-154
    [30] 姬亚芹,朱坦,冯银厂,等.天津市PM10中元素的浓度特征和富集特征研究[J]. 环境科学与技术,2006,7:49-51
    [31] Mukhtar A,Limbeck A.Recent developments in assessment of bio-accessible trace metal fractions in airborne particulate matter: A review[J]. Analytica Chimica Acta,2013,774:11-25
    [32] Schneidemesser E,Stone E A,Quraishi T A,et al.Toxic metals in the atmosphere in Lahore,Pakistan[J]. Science of the Total Environment,2010,408(7):1640-1648
    [33] Espinosa A J,RodríGuez M,Rosa F J,et al. A chemical speciation of trace metals for fine urban particles[J]. Atmospheric Environment,2002,36(5):773-780
    [34] Guieu C,Chester R,Nimmo M,et al.Atmospheric input of dissolved and particulate metals to the northwestern Mediterranean[J]. Deep Sea Research Part Ⅱ: Topical Studies in Oceanography,1997,44(3):655-674
    [35] Sandron V,Migon C.Atmospheric deposition of metallic pollutants over the Ligurian Sea labile and residual inputs[J]. Chemosphere,2002,47:753-764
    [36] Herut B,Nimmo M,Medway A,et al.Dry atmospheric inputs of trace metals at the Mediterranean coast of Israel (SE Mediterranean) sources and fluxes[J]. Atmospheric Environment,2001,35:803-813
    [37] Chow J C.Measurement methods to determine compliance with ambient air quality standards for suspended particles[J]. Journal of the Air & Waste Management Association,1995,45(5):320-382
    [38] Svenes K,Andersen I.Distribution of nickel in lungs from former nickel workers[J]. International Archives of Occupational and Environmental Health,1998,71(6):424-428
    [39] Praharaja T,Powellb M A,Hartb B R,et al.Leachability of elements from sub-bituminous coal fly ash from India[J]. Environment International,2002,27:609-615
    [40] Vassilev S V,Menendez R,Somoano M D,et al.Phase-mineral and chemical composition of coal fly ashes as a basis for their multicomponent utilization. 2. Characterization of ceramic cenosphere and salt concentrates[J]. Fuel,2004,83(4/5):585-603
    [41] Liu A,Wong J L.Chemical speciation of nickel in fly ash by phase separation and carbon paste electrode voltammetry[J]. Journal of Hazardous Materials,2000,74(1):25-35
    [42] Vitolo S,Seggiani M,Falaschi F.Recovery of vanadium from a previously burned heavy oil fly ash[J]. Hydrometallurgy,2001,62(3):145-150
    [43] 王晴晴.北京市冬季PM2.5中水溶性重金属污染特征[D].北京:中国科学院大学硕士学位论文,2013
    [44]
    [45] Castillo M E,Ortiz M,Ruiz A,et al.Chemical characterization of extractable water soluble matter associated with PM10 from Mexico City during 2000[J]. Chemosphere,2005,61(5):701-710
    [46] 段国霞,周变红.西安市南郊冬季PM2.5中重金属污染与危害分析[J]. 农业灾害研究,2012,2(2):27-29
    [47] Hlavay J Z,PolyáK K R,MolnáR A G,et al.Determination of the distribution of elements as a function of particle size in aerosol samples by sequential leaching[J]. The Analyst,1998,123(5):859-863
    [48] Desboeufs K V,Sofikitis A,Losno R,et al.Dissolution and solubility of trace metals from natural and anthropogenic aerosol particulate matter[J]. Chemosphere,2005,58(2):195-203
    [49] Lim B,Jickells T,Colin J,et al.Solubilities of Al,Pb,Cu,and Zn in rain sampled in the marine environment over the North Atlantic Ocean and Mediterranean Sea[J]. Global Biogeochemical Cycles,1994,8(3):349-362
    [50] Fernández A J,Ternero M,Barragán F J,et al.An approach to characterization of sources of urban airborne particles through heavy metal speciation[J]. Chemosphere-Global Change Science,2000,2(2):123-136
    [51] Voutsa D,Samara C.Labile and bioaccessible fractions of heavy metals in the airborne particulate matter from urban and industrial areas[J]. Atmospheric Environment,2002,36(22):3583-3590
    [52] Jin Y,Yuan C,Jiang W,et al.Evaluation of bioaccessible arsenic in fly ash by an in vitro method and influence of particle-size fraction on arsenic distribution[J]. Journal of Material Cycles and Waste Management,2013,15(4):516-521
    [53]
    [54] 王明仕,钦凡,刘克武,等.焦作市大气颗粒物中水溶性砷的分布特征[J]. 城市环境与城市生态,2012,25(4):12-14
    [55] Li W,Shao L,Wang Z,et al.Size,composition,and mixing state of individual aerosol particles in a South China coastal city[J]. Journal of Environmental Sciences,2010,22(4):561-569
    [56] Mandal B K,Suzuki K T.Arsenic round the world: A review[J]. Talanta,2002,58(1):201-235
    [57] Fang G C,Huang Y L,Huang J H,et al.Optimum particle size for prediction of ambient air arsenic dry deposition in central Taiwan[J]. Atmospheric Research,2012,104:255-263
    [58] 梁淑轩,吴虹,孙汉文.氢化物发生原子荧光结合计算法测定大气颗粒物中砷的形态[J]. 分析实验室,2012,31(5):86-89
    [59] Oliveira V,Ariza J L,Rodas D.Extraction procedures for chemical speciation of arsenic in atmospheric total suspended particles[J]. Analytical and Bioanalytical Chemistry,2005,382(2):335-340
    [60] Yang G,Ma L,Xu D,et al.Levels and speciation of arsenic in the atmosphere in Beijing,China[J]. Chemosphere,2012,87(8):845-850
    [61] Wichmann H,Sprenger R,Wobst M,et al.Combustion induced transport of heavy metals in the gas phase- A review[J]. Fresenius Environmental Bulletin,2000,9(1):72-125
    [62] 张桂林,谈明光,李晓林,等.上海市大气气溶胶中铅污染的综合研究[J]. 环境科学,2006,27(5):831-836
    [63] Weckwerth G.Verification of traffic emitted aerosol components in the ambient air of Cologne (Germany)[J]. Atmospheric Environment,2001,35(32):5525-5536
    [64]
    [65] Aurisicchio C,Bardi G,Colligiani A,et al.Characterization of fossil oil fly ash and the enrichment of the contained vanadium as V4C3 by high-temperature treatment[J]. Chemistry of Materials,1995,7(5):865-870
    [66] Palmer C D,Wittbrodt P R.Processes affecting the remediation of chromium-contaminated sites[J]. Environmental Health Perspectives,1991,92:25-40
    [67] Lide D R. CRC Handbook of Chemistry and Physics,86th edn,2005—2006[M].Boca Raton:CRC Press,2005
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  • 收稿日期:  2014-02-25
郑乃嘉, 谭吉华, 段菁春, 马永亮, 贺克斌. 大气颗粒物水溶性重金属元素研究进展[J]. 环境化学, 2014, 33(12): 2109-2116. doi: 10.7524/j.issn.0254-6108.2014.12.005
引用本文: 郑乃嘉, 谭吉华, 段菁春, 马永亮, 贺克斌. 大气颗粒物水溶性重金属元素研究进展[J]. 环境化学, 2014, 33(12): 2109-2116. doi: 10.7524/j.issn.0254-6108.2014.12.005
ZHENG Naijia, TAN Jihua, DUAN Jingchun, MA Yongliang, HE Kebin. Research progress on water-soluble heavy metal in atmospheric particulate mattters[J]. Environmental Chemistry, 2014, 33(12): 2109-2116. doi: 10.7524/j.issn.0254-6108.2014.12.005
Citation: ZHENG Naijia, TAN Jihua, DUAN Jingchun, MA Yongliang, HE Kebin. Research progress on water-soluble heavy metal in atmospheric particulate mattters[J]. Environmental Chemistry, 2014, 33(12): 2109-2116. doi: 10.7524/j.issn.0254-6108.2014.12.005

大气颗粒物水溶性重金属元素研究进展

  • 1.  中国科学院大学资源与环境学院, 北京, 100049;
  • 2.  清华大学环境学院, 环境模拟与污染控制国家重点联合实验室, 北京, 100084;
  • 3.  中国环境科学研究院, 环境基准与风险评估国家重点实验室, 北京, 100012
基金项目:

国家自然科学基金(41475116, 41275134), 国家自然科学基金重大项目(21190054)和国家环境保护大气复合污染来源与控制重点实验室基金资助.

摘要: 以As、Cd、Cr、Cu、Ni、Mn、V、Pb和Zn为研究对象,总结历史及自身研究结果,从大气颗粒物水溶性重金属的分析方法、浓度水平、化合物形态、水溶性及其影响因素等方面进行分析.结果表明,发展中国家大气颗粒物水溶性重金属浓度较高,国内水溶性Zn和As污染严重,特别是As已超过国家空气质量标准中的浓度限值;大气中Zn、Pb、Cd、As和V的浓度和水溶性都较高(37.69%—58.65%),应受到广泛关注;大气颗粒物中重金属的水溶性主要受颗粒物粒径大小、酸碱性、重金属与颗粒物结合方式、金属化合物形态和来源的影响.研究结果可以为大气重金属污染控制和人体健康影响评估的开展提供理论基础.

English Abstract

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