[1] Yang Liu, Vijver M. G., Peijnenburg W. J. G. M. Comparing three approaches in extending biotic ligand models to predict the toxicity of binary metal mixtures (Cu-Ni, Cu-Zn and Cu-Ag) to lettuce(Lactuca sativa L.). Chemosphere, 2014, 112:282-288
[2] Di Toro D. M., Mahony J. D., Hansen D. J., et al. Toxicity of cadmium in sediments:The role of acid volatile sulfide. Environmental Toxicology and Chemistry, 1990, 9(12):1487-1502
[3] Rickard D., Morse J. W. Acid volatile sulfide (AVS). Marine Chemistry, 2005, 97(3-4):141-197
[4] 张弛, 王树功, 朱远辉, 等. 红树林湿地沉积物中AVS-SEM与重金属分布特征:以珠江口淇澳岛为例. 环境科学学报, 2011, 31(4):805-815 Zhang Chi, Wang Shugong, Zhu Yuanhui, et al. Distributions of AVS-SEM and heavy metals in mangrove sediments:A case study at Qi'ao island in the Pearl River estuary. Acta Scientiae Circumstantiae, 2011, 31(4):805-815(in Chinese)
[5] 李金城, 宋进喜, 王晓蓉. 太湖五里湖区表层沉积物中酸挥发性硫化物和同步提取金属. 湖泊科学, 2004, 16(1):77-80 Li Jincheng, Song Jinxi, Wang Xiaorong. Acid volatile sulfides and simmltaneous extracted metals in the surficial sediments of Wuli Lake, Lake Taihu. Journal of Lake Sciences, 2004, 16(1):77-80(in Chinese)
[6] 利锋, 温琰茂, 朱娉婷, 等. 污染沉积物AVS对水丝蚓体内重金属积累的影响. 环境科学学报, 2008, 28(11):2250-2257 Li Feng, Wen Yanmao, Zhu Pingting, et al. The influence of AVS in contaminated sediments on heavy metal bioaccumulation in Limnodrilus sp. Acta Scientiae Circumstantiae, 2008, 28(11):2250-2257(in Chinese)
[7] 何绪文, 胡建龙, 李静文, 等. 硫化物沉淀法处理含铅废水. 环境工程学报, 2013, 7(4):1394-1398 He Xuwen, Hu Jianlong, Li Jingwen, et al. Treatment of wastewater containing lead by sodium sulfide precipitation. Chinese Journal of Environmental Engineering, 2013, 7(4):1394-1398(in Chinese)
[8] 黄万抚, 王淑君. 硫化沉淀法处理矿山酸性废水研究. 环境污染治理技术与设备, 2004, 5(8):60-82 Huang Wanfu, Wang Shujun. Research on treatment of mine wastewater using sulfide precipitation floatation. Techniques and Equipment for Environmental Pollution Control, 2004, 5(8):60-82(in Chinese)
[9] Carlson A. R., Phipps G. L., Mattson V. R., et al. The role of acid-volatile sulfide in determining cadmium bioavailability and toxicity in freshwater sediments. Environmental Toxicology and Chemistry, 1991, 10(10):1309-1319
[10] 刘景春, 严重玲, 胡俊. 水体沉积物中酸可挥发性硫化物(AVS)研究进展. 生态学报, 2004, 24(4):812-818 Liu Jingchun, Yan Chongling, Hu Jun. A review on the studies of acid-volatile sulfide in aquatic sediments. Acta Ecologica Sinica, 2004, 24(4):812-818(in Chinese)
[11] Di Toro D. M., Mahony J. D., Hansen D. J., et al. Acid volatile sulfide predicts the acute toxicity of cadmium and nickel in sediments. Environmental Science & Technology, 1992, 26(1):96-101
[12] Charlesworth S. M., Lees J. A. Particulate-associated heavy metals in the urban environment:Their transport from source to deposit, Coventry, UK. Chemosphere, 1999, 39(5):833-848
[13] 刘清, 王子健, 汤鸿霄. 重金属形态与生物毒性及生物有效性关系的研究进展. 环境科学, 1996, 17(1):89-92 Liu Qing, Wang Zijian, Tang Hongxiao. Research progress in heavy metal speciation and toxicity and bioavailability of heavy metals. Environmental Science, 1996, 17(1):89-92(in Chinese)
[14] 范文宏, 张博, 陈静生, 等. 锦州湾沉积物中重金属污染的潜在生物毒性风险评价. 环境科学学报, 2006, 26(6):1000-1005 Fan Wenhong, Zhang Bo, Chen Jingsheng, et al. Pollution and potential biological toxicity assessment using heavy metals from surface sediments of Jinzhou Bay. Acta Scientiae Circumstantiae, 2006, 26(6):1000-1005(in Chinese)
[15] Henke K. R. Arsenic:Environmental Chemistry, Health Threats and Waste Treatment. Chichester:John Wiley & Sons Ltd., 2009
[16] Nriagu J. O., Bhattacharya P., Mukherjee A. B., et al. Arsenic in soil and groundwater:An overview. Trace Metals and Other Contaminants in the Environment, 2007, 9:3-60
[17] Marabottini R., Stazi S. R., Papp R., et al. Mobility and distribution of arsenic in contaminated mine soils and its effects on the microbial pool. Ecotoxicology and Environment Safety, 2013, 96:147-153
[18] Stone D., Sherman J., Hofeld E. Arsenic in Oregon community water systems:Demography matters. Science of the Total Environment, 2007, 382(1):52-58
[19] Chapman P. M., Wang Feiyue, Adams W. J., et al. Appropriate applications of sediment quality values for metals and metalloids. Environmental Science & Technology, 1999, 33(22):3937-3941
[20] Berry W. J., Hansen D. J., Boothman W. S., et al. Predicting the toxicity of metal-spiked laboratory sediments using acid-volatile sulfide and interstitial water normalizations. Environmental Toxicology and Chemistry, 1996, 15(12):2067-2079
[21] Brix K. V., Keithly J., Santore R. C., et al. Ecological risk assessment of zinc from stormwater runoff to an aquatic ecosystem. Science of the Total Environment, 2010, 408(8):1824-1832
[22] Hansen D. J., Berry W. J., Boothman W. S., et al. Predicting the toxicity of metal-contaminated field sediments using interstitial concentration of metals and acid-volatile sulfide normalizations. Environmental Toxicology and Chemistry, 1996, 15(12):2080-2094
[23] Ma D. Y., Wang J. Y., Ma D. Y., et al. The effects on chemical activity of divalent toxic metal in sediment-pore water of acid-volatile sulfide (AVS). Acta Oceanologica Sinica, 1997, 19(5):83-90
[24] Wang J. Y., Ma D. Y., Yan Q. L., et al. The effect of acid volatile sulfide on geo-chemistry characteristics and toxicity of Cd in marine sediments. Oceanologia et Limnologia Sinica, 2001, 32(5):483-488
[25] United States Environmental Protection Agency. Methods for Collection, Storage and Manipulation of Sediments for Chemical and Toxicological Analyses, Technical Manual EPA-823-B-01-002. Washington D.C.:United States Environmental Protection Agency, 2001
[26] United States Environmental Protection Agency. The incidence and severity of sediment contamination in surface waters of the United States. vol 1:National sediment quality survey[EPA 823-R-04-007]. Washington D C:United States Environmental Protection Agency,2004
[27] Sibley P. K., Ankley G. T., Cotter A. M., et al. Predicting chronic toxicity of sediments spiked with zinc:An evaluation of the acid-volatile sulfide model using a life-cycle test with the midge Chironomus tentans. Environmental Toxicology and Chemistry, 1996, 15(12):2102-2112
[28] Poot A., Meerman E., Gillissen F., et al. A kinetic approach to evaluate the association of acid volatile sulfide and simultaneously extracted metals in aquatic sediments. Environmental Toxicology and Chemistry, 2009, 28(4):711-717
[29] Berry W. J., Cantwell M. G., Edwards P. A., et al. Predicting toxicity of sediments spiked with silver. Environmental Toxicology and Chemistry, 1999, 18(1):40-48
[30] Shipley H. J., Gao Yan, Kan A. T., et al. Mobilization of trace metals and inorganic compounds during resuspension of anoxic sediments from Trepangier Bayou, Louisiana. Journal of Environmental Quality, 2011, 40(2):484-491
[31] Lee B. G., Lee J. S., Luoma S. N., et al. Influence of acid volatile sulfide and metal concentrations on metal bioavailability to marine invertebrates in contaminated sediments. Environmental Science & Technology, 2000, 34(21):4517-4523
[32] Lacey E. M., King J. W., Quinn J. G., et al. Sediment quality in Burlington Harbor, Lake Champlain, U.S.A. Water, Air, and Soil Pollution, 2001, 126(1-2):97-120
[33] 宋进喜, 李金成, 王晓蓉, 等. 太湖梅梁湾沉积物中酸挥发性硫化物垂直变化特征研究. 环境科学学报, 2004, 24(2):271-274 Song Jinxi, Li Jincheng, Wang Xiaorong, et al. Vertical variability of acid volatile sulfide (AVS) in the sediments of Meiliang Bay, Taihu Lake. Acta Scientiae Circumstantiae, 2004, 24(2):271-274(in Chinese)
[34] Wolfenden S., Charnock J. M., Hilton J., et al. Sulfide species as a sink for mercury in lake sediments. Environmental Science & Technology, 2005, 39(17):6644-6648
[35] 张玉玺, 孙继朝, 王金翠, 等. 阳宗海表层沉积物磷、氟、硫的分布与污染状况. 环境监测管理与技术, 2011, 23(4):37-40 Zhang Yuxi. Sun Jichao, Wang Jincui, et al. Distribution and pollution of phosphorus, fluorine and sulfur in surface sediments from Lake Yangzonghai. The Administration and Technique of Environmental Monitoring, 2011, 23(4):37-40(in Chinese)
[36] 尹洪斌, 范成新, 蔡永久. 太湖表层沉积物AVS与SEM分布特征及相互关系. 湖泊科学, 2008, 20(5):585-590 Yin Hongbin, Fan Chengxin, Cai Yongjiu. Distribution characteristic and correlation of AVS and SEM in surface sediments of Lake Taihu. Journal of Lake Sciences, 2008, 20(5):585-590(in Chinese)
[37] 赵铮, 姜霞, 吴永贵, 等. 太湖沉积物酸可挥发性硫化物分布特征及重金属生物有效性评价. 环境科学学报, 2011, 31(12):2714-2722 Zhao Zheng, Jiang Xia, Wu Yonggui, et al. Distribution characteristics of acid volatile sulfide and bioavailability evaluation of heavy metals in sediments of Lake Taihu. Acta Scientiae Circumstantiae, 2011, 31(12):2714-2722(in Chinese)
[38] Oehm N. J., Luben T. J., Ostrofsky M. L. Spatial distribution of acid-volatile sulfur in the sediments of Canadohta Lake, PA. Hydrobiologia, 1997, 345(1):79-85
[39] Van Griethuysena C., Meijboom E. W., Koelmans A. A. Spatial variation of metals and acid volatile sulfide in fioodplain lake sediment. Environmental Toxicology and Chemistry, 2003, 22(3):457-465
[40] Mackey A. P., Mackay S. Spatial distribution of acid-volatile sulphide concentration and metal bioavailability in mangrove sediments from the Brisbane River, Australia. Environmental Pollution, 1996, 93(2):205-209
[41] 贾振邦, 林健枝, 吕丰伟. 香港沉积物氧化过程对铅的约束作用. 北京大学学报(自然科学版), 1999, 35(6):834-841 Jia Zhenbang, Lin Jianzhi, Lv Fengwei. Effect of aeration of Hong Kong sediment on lead binding. Acta Scientiarum Naturalium Universitatis Pekinensis, 1999, 35(6):834-841(in Chinese)
[42] Nedwell D. B., Abram J. W. Bacterial sulphate reduction in relation to sulphur geochemistry in two contrasting areas of saltmarsh sediment. Estuarine and Coastal Marine Science, 1978, 6(4):341-351
[43] Zhuang Wen, Gao Xuelu. Acid-volatile sulfide and simultaneously extracted metals in surface sediments of the southwestern coastal Laizhou Bay, Bohai Sea:Concentrations, spatial distributions and the indication of heavy metal pollution status. Marine Pollution Bulletin, 2013, 76(1-2):128-138
[44] Wijsman J. W. M., Middelburg J. J., Herman P. M. J., et al. Sulfur and iron speciation in surface sediments along the northwestern margin of the Black Sea. Marine Chemistry, 2001, 74(4):261-278
[45] 施玉珍, 张际标, 李雪英, 等. 深圳湾海域沉积物中酸可挥发性硫化物与重金属生态风险评价. 海洋环境科学, 2012, 31(4):492-495 Shi Yuzhen, Zhang Jibiao, Li Xueying, et al. Assessment on ecological risk of acid-volatile sulfide and tracemetals in marine sediment of Shenzhen Bay. Marine Environmental Science, 2012, 31(4):492-495(in Chinese)
[46] 王飞越, 汤鸿宵. 水体沉积物中的酸挥发性硫化物(AVS)及其对沉积物环境质量的影响. 环境科学进展, 1997, 5(1):1-6 Wang Feiyue, Tang Hongxiao. Acid volatile sulfide in aquatic sediments and its effect on sediment quality. Advances in Environmental Science, 1997, 5(1):1-6(in Chinese)
[47] 张玉玺, 孙继朝, 向小平, 等. 云南阳宗海湖底沉积物重金属分布与来源. 环境科学与技术, 2010, 33(12):171-175 Zhang Yuxi, Sun Jichao, Xiang Xiaoping, et al. A survey of heavy metals in sediments of Yangzonghai Lake in Yunnan Province:Their source and distribution. Environmental Science & Technology, 2010, 33(12):171-175(in Chinese)
[48] Simpson S. L., Ward D., Strom D., et al. Oxidation of acid-volatile sulfide in surface sediments increases the release and toxicity of copper to the benthic amphipod Melita plumulosa. Chemosphere, 2012, 88(8):953-961
[49] 王振华, 何滨, 潘学军, 等. 云南阳宗海砷污染水平、变化趋势及风险评估. 中国科学:化学, 2011, 41(3):556-564 Wang Zhenhua, He Bin, Pan Xuejun, et al. The levels, trends and risk assessment of arsenic pollution in Yangzonghai Lake, Yunnan. Scientia Sinica Chimica, 2011, 41(3):556-564(in Chinese)
[50] 齐剑英, 许振成, 李祥平, 等. 阳宗海水体中砷的形态分布特征及来源研究. 安徽农业科学, 2010, 38(20):10789-10792 Qi Jianying, Xu Zhencheng, Li Xiangping, et al. Study on source and speciation distribution characteristics of arsenic in Yangzonghai Lake waters. Journal of Anhui Agricultural Sciences, 2010, 38(20):10789-10792(in Chinese)
[51] 张玉玺, 向小平, 张英, 等. 云南阳宗海砷的分布与来源. 环境科学, 2012, 33(11):3768-3777 Zhang Yuxi, Xiang Xiaoping, Zhang Ying, et al. Distribution and sources of arsenic in Yangzonghai Lake, China. Environmental Science, 2012, 33(11):3768-3777(in Chinese)