收稿日期: 2007-07-04
修回日期: 2008-02-21
网络出版日期: 2008-04-10
基金资助
国家自然科学基金重点项目“锑的环境生物地球化学循环与效应”(编号:40632011);中国科学院知识创新工程重要方向项目“西南喀斯特地区天然有机质的环境生物地球化学过程与效应”(编号:KZCX2-YW-102);国家自然科学基金杰出青年基金项目“环境地球化学与生物地球化学”(编号:40525011)联合资助.
Prospect on Biogeochemical Cycle and Environmental Effect of Antimony
Received date: 2007-07-04
Revised date: 2008-02-21
Online published: 2008-04-10
吴丰昌 , 潘响亮 , 朱静 , 刘碧君 , 劭树勋 , 郭建阳 , 莫昌琍 , 邓秋静 , 黎文 , 郑建 . 锑的环境生物地球化学循环与效应研究展望[J]. 地球科学进展, 2008 , 23(4) : 350 -356 . DOI: 10.11867/j.issn.1001-8166.2008.04.0350
Studies show antimony as lead and mercury is a global toxic element that can be transported far away, but it only recently arouses attentions. Compared with other metals such as mercury, lead, cadmium and arsenic, much less has been done on antimony. Systematic studies are urgently needed to disclose the global pollution level, cycling processes and ecological environment effects of antimony. Knowledge about biogeochemical cycle and environmental effect of antimony are summarized, and the scientific problems are analyzed. The direction and method for future antimony study are also suggested. The district in the Southwest of China is a good place to study the biogeochemical cycle and environmental effect of antimony, and this study will be of great importance.
Key words: Antimony; Biogeochemical cycle; Environmental effects.
[1] Council of European Union. Council Directive 98/83/EC of 3 November,Quality of Water Intended for Human consumption [J/OL]. Official Journal Letters,1989,330:32-54.
[2] US EPA. Water related fate of the 129 Priority Pollutants [EB/OL]. Washington DC,1979,1,EP-440/4-79-029A.
[3] Furuta N,Iijima A,Kambe A,et al. Concentrations,enrichment and predominant sources of Sb and other trace elements in size classified airborne particulate matter collected in Tokyo from 1995 to 2004 [J]. Journal of Environmental Monitoring,2005,7:1 155-1 161.
[4] He Mengchang,Wan Hongyan. Distribution,speciation,toxicity and bioavailability of antimony in the environment [J]. Progress in Chemistry,2004,16(1): 131-135.[何孟常,万红艳. 环境中锑的分布、存在形态及毒性和生物有效性[J]. 化学进展,2004,16(1):131-135.]
[5] Shotyk W,Krachler M,Chen B. Antimony: Global environmental contaminant [J]. Journal of Environmental Monitoring,2005,7: 1 135-1 136.
[6] Cloy J M,Farmer J G,Graham M C,et al. A comparison of antimony and lead profiles over the past 2500 years in Flanders Moss ombrotrophic peat bog,Scotland [J]. Journal of Environmental Monitoring,2005,7: 1 137-1 147.
[7] Krachler M,Zheng J,Koerner R,et al. Increasing atmospheric antimony contamination in the northern hemisphere: Snow and ice evidence from Devon Island,Arctic Canada [J]. Journal of Environmental Monitoring,2005,77: 1 169-1 176.
[8] Shotyk W,Chen B,Krachler M. Lithogenic,oceanic and anthropogenic sources of atmospheric Sb to a maritime blanket bog,Myrarnar,Faroe Islands [J]. Journal of Environmental Monitoring, 2005,7: 1 148-1 154.
[9] Gebel T,Christensen S,Dunkelberg H. Comparative and environmental genotoxicity of antimony and arsenic [J]. Anticancer Research,1997,17: 2 603-2 608.
[10] McCallum R I. Occupational exposure to antimony compounds [J]. Journal of Environmental Monitoring,2005,7:1 245-1 250.
[11] Ren Zhaohui,Qing Zixuan,Chen Zhiyu. Analysis of present antimony market and development trend [J]. World Nonferrous Metals,2002,(7): 23-25.[任朝晖,卿仔轩,陈志宇. 锑市场现状及发展趋势分析[J]. 世界有色金属,2002,(7):23-25.]
[12] Gebel T. Arsenic and antimony: Comparative approach on mechanistic toxicology [J]. Chemico-Biological Interactions,1997,107(3): 131-144.
[13] Shotyk W,Cheburkin A K,Appleby P G,et al. Two thousand years of atmospheric arsenic, antimony,and lead deposition recorded in an ombrotrophic peat bog profile,Jura Mountains, Switzerland [J]. Earth and Planetary Science Letters,1996,145(1/4): E1-E7.
[14] Filella M,Belzile N,Chen Y W. Antimony in the environment: A review focused on natural waters I. Occurrence [J]. Earth-Science Review,2002,57: 125-176.
[15] Wu Jiada,Xiao Qiming,Zhao Shougeng. China Antimony Mineral Deposit [C]∥Song Shuhe, et al,eds. China Mineral Deposit(first volume). Beijing: Geology Press,1994: 338-412.[乌家达,肖启明,赵守耿. 中国锑矿床[C]∥宋叔和等主编. 中国矿床(上册). 北京:地质出版社,1994:338-412.]
[16] Gurnai N,Sharma A,Talukder G. Effects of antimony on cellular systems in animals-a review [J]. Nucleus,1994,37: 71-96.
[17] Filella M,Belzile N,Chen Y W. Antimony in the environment: A review focused on natural waters II. Relevant solution chemistry [J]. Earth-Science Review,2002,59: 265-285.
[18] Takyanagi K,Cossa D. Vertical distribution of Sb(III) and Sb(V) in Pavin lake,France [J]. Water Research,1997,31:671-674.
[19] Zheng J,Iijima A,Furuta N. Complexation effect of antimony compounds with citric acid and its application to the speciation of antimony(III) and antimony(V) using HPLC-ICP-MS [J]. Journal of Analytical Atomic Spectrometry,2001,16: 812-818.
[20] Vinas P,Lopez-Garcia I,Merino-Merono B,et al. Liquid chromatography-hydride generation-atomic fluorescence spectrometry hybridation for antimony speciation in environmental samples [J]. Talanta,2006,68:1 401-1 405.
[21] Krachler M,Emons H,Zheng J. Speciation of antimony for the 21st century: Promises and pitfalls [J]. Trends in Analytical Chemistry,2001,20(2): 79-90.
[22] Ford T E,Mitchel R. Microbial transport of toxic metals [C]∥Mitchel R,ed. Environmental Microbial. New York: John Wiley-Liss,1992:83-101.
[23] White C,Sayer J A,Gadd G M. Microbial solubilization and immobilization of toxic metals: Key biogeochemical processes for treatment of contamination [J]. FEMS Microbiology Review,1997,20: 503-516.
[24] Zhu X K,Guo Y,O'Nions R K,et al. Isotopic homogeneity of iron in the early solar nebula [J]. Nature,2001,412:311-313.
[25] Rouxel O,Ludden J,Fouquet Y. Antimony isotope variations in natural systems and implications for their use as geochemical tracers [J]. Chemical Geology,2003,200:25-40.
[26] Johnson C M,Beard B J,Albarede F. Geochemistry of non-traditional stable isotopes [J]. Review in Mineralogy and Geochemistry,2004,55: 1-450.
[27] Arnold G L,Anbar A D,Barling J,et al. Molybdenum isotope evidence of widespread anoxia in mid-proterozoic oceans [J]. Science,2004,295:2 060-2 062.
[28] Bentley R,Chasteen T G. Microbial methylation of metalloids: Arsenic,antimony,and bismuth [J]. Microbiology and Molecular Biology Reviews,2002,66(2): 250-271.
[29] Filella M,Belzile N,Lett M C. Antimony in the environment: A review focused on natural waters III. Microbiota relevant interactions [J]. Earth-Science Reviews,2007,80(3/4): 195-217.
[30] Breault R,Colman J,Akien G,et al. Copper speciation and binding by organic matter in copper contaminated streamwater [J]. Environmental Science Technology,1996,30: 3 477-3 486.
[31] Wu F C,Tanoue E. Isolation and partial characterization of dissolved copper-complexing ligands in streamwaters [J]. Environmental Science & Technology,2001,35:3 646-3 652.
[32] Wu F C,Mills B,Evans R D,et al. Molecular size distribution characteristics of the metal-DOM complexes in stream waters by high-performance size-exclusion chromatography and high-resolution inductively coupled plasma mass spectrometry [J]. Journal of Analytical and Atomic Spectrometry,2004,19: 979-983.
[33] Wu F C,Cai Y R,Evans R D,et al. Complexation between Hg(II) and dissolved organic matter in stream waters: An application of fluorescence spectroscopy [J]. Biogeochemistry,2004,71: 339-351.
[34] Deng T,Chen Y W,Belzile N. Antimony speciation at ultra trace levels using hydride generation atomic fluorescence spectrometry and 8-hydroxyquinoline as an efficient masking agent [J]. Analytica Chimica Acta,2001,432: 293-302.
[35] Tang Xiangyu,Lü Bosheng,Wu Wenhua. Metal-microbe Interactions in Aquatic Ecosystems [J]. Research of Environmemal Sciences,1999,12: 28-32. [唐翔宇,吕伯升,吴文华. 水生生态系统中的微生物—金属相互作用[J]. 环境科学研究,1999,12:28-32.]
[36] Wu Shengchun,Luo Yongming,Jiang Xianjun,et al. Study on Phytoremediation of heavy metal polluted soils [J]. Soils,2000,2: 75-81.[吴胜春,骆永明,蒋先军,等. 重金属污染土壤的植物修复研究[J]. 土壤,2000,2:75-81.]
[37] Liang Xiaobing,Wan Guojiang,Huang Ronggui. Expectation and application of PCR-RFLP in environmental geochemistry [J]. Geology Geochemistry,2001,29:94-98. [梁小兵,万国江,黄荣贵. PCR-RFLP技术在环境地球化学研究中的应用及展望[J]. 地质地球化学,2001,29: 94-98.]
[38] Wang Fushun,Liu Congqiang,Liang Xiaobing,et al. Remobilization of trace metals induced by microbiological activities near sediment-water Interface,Aha Lake,Guiyang [J]. Chinese Science Bulletin,2003,48: 2 073-2 080.[汪福顺,刘丛强,梁小兵,等. 贵州阿哈湖沉积物—水界面微生物活动及其对微量元素再迁移富集的影响[J]. 科学通报,2003,48:2 073-2 080.]
[39] Kirk M F,Holm T R,Park J H,et al. Bacterial sulfate reduction limits natural arsenic contamination in groundwater [J]. Geology,2004,32(11): 953-956.
[40] Fu P Q,Wu F C,Liu C Q,et al. Spectroscopic characterization and molecular weight distribution of dissolved organic matter in sediment porewaters from Lake Erhai,Southwest China [J]. Biogeochemistry,2006,81 (2): 179-189.
[41] Tabak H H,Scharp R,Burckle J,et al. Advances in biotreatment of acid mine drainage and biorecovery of metals: 1. Metal precipitation for recovery and recycle [J]. Biodegradation,2003,14(6): 423-436.
[42] Lyalikova M N. Antimony-oxidizing bacteria and their geochemical activity [C]∥Krumbein W E,ed. Environmental Biogeochemistry and Geomicrobiology. Ann Arbor: Ann Arbor Science,1987:929-936.
[43] Perez-Corona T,Madrid Y,Camara C. Evaluation of selective uptake of selenium and antimony species by baker's yeast cells [J]. Analytica Chimica Acta,1997,345: 249-255.
[44] He Mengchang,Ji Haibing,Zhao Chengyi,et al. Preliminary study of heavy metal pollution in soil and plant near antimony mine area [J]. Journal of Beijing Normal University(Natural Science),2002,38(3):417-420.[何孟常,季海兵,赵承易,等. 锑矿区土壤和植物中重金属污染初探[J]. 北京师范大学学报:自然科学学报,2002,38(3):417-420.]
[45] He M C,Yang J R. Effects of different forms of antimony on rice during the period of germination and growth and antimony concentration in rice tissue [J]. The Science of the Total Environment,1999,243: 149-155.
[46] Baroni F,Boscagli A,Protano G,et al. Antimony accumulation in Achillea ageratum,Plantago lanceolata and Silene vulgaris growing in an old Sb-mining area [J]. Environmental Pollution,2000,109: 347-352.
[47] Fan D L,Zhang T,Ye J. The Xikuangshan Sb deposit hosted by the Upper Devonian black shale series,Hunan,China [J]. Ore Geology Review,2000,24:121-133.
[48] Yang Ruiyan,Ma Dongsheng,Pan Jiayong. Geothermal field of ore-forming fluids of antimony deposits in Xikuangshan [J]. Geochimica,2003,32(6): 509-519.[杨瑞琰,马东升,潘家永. 锡矿山锑矿床成矿流体的热场研究[J]. 地球化学,2003,32(6):509-519.]
[49] Tu Guangzhi,Gao Zhenmin,Cheng Jingping,et al. Low Temperature Geochemistry [M]. Beijing: Science Press,1998. [涂光炽,高振敏,程景平,等. 低温地球化学[M]. 北京:科学出版社,1998.]
[50] Tu Guangzhi,Gao Zhenmin,Hu Ruizhong,et al. Dispersed Element Geochemistry and mineralization mechanism [M]. Beijing: Geology Press,2003.[涂光炽,高振敏,胡瑞忠,等. 分散元素地球化学及成矿机制[M]. 北京:地质出版社,2003.]
[51] Qi Wenqi,Cao Jieshan. Research on the soil environment background value of antimony [J]. Chinese Journal of Soil Science,1991,22: 209-211.[齐文启,曹杰山. 锑(Sb)的土壤环境背景值研究[J]. 土壤通报,1991,22:209-211.]
[52] Gomez D R,Gine M F,Bellato A C S,et al. Antimony: A traffic-related element in the atmosphere of Buenos Aires,Argentina [J]. Journal of Environmental Monitoring,2005,7: 1 162-1 168.
/
〈 |
|
〉 |