[1] |
ALI HAZRAT, KHAN EZZAT, SAJAD M A, 2013. Phytoremediation of heavy metals: Concepts and applications[J]. Chemosphere, 91(7): 869-881.
DOI
URL
|
[2] |
BAKER A J M, 2001. Accumulators and excluders-strategies in the response of plants to heavy metals[J]. Journal of Plant Nutrition, 3(1-4): 643-654.
DOI
URL
|
[3] |
HABIBOLLAHI, HOSSEIN MOHAMMAD, KARIMYAN, et al., 2019. Extraction and determination of heavy metals in soil and vegetables irrigated with treated municipal wastewater using new mode of dispersive liquid-liquid microextraction based on the solidified deep eutectic solvent followed by GFAAS[J]. Journal of the Science of Food Agriculture, 99(1): 656-665.
DOI
URL
|
[4] |
SILVA MEDEIROS, FABIANO R W, EDUARDO S I, et al., 2020. Fast and effective simultaneous determination of metals in soil samples by ultrasound-assisted extraction and flame atomic absorption spectrometry: assessment of trace elements contamination in agricultural and native forest soils from Parana-Brazil[J]. Environmental Monitoring Assessment, 192(2): 11111-11115.
|
[5] |
SUN L U, LIAO X Y, YAN X L, et al., 2014. Evaluation of heavy metal and polycyclic aromatic hydrocarbons accumulation in plants from typical industrial sites: potential candidate in phytoremediation for co-contamination[J]. Environmental Science Pollution Research International, 21(21): 12494-12504.
DOI
URL
|
[6] |
TROTTA A, FALASCHI P, CORNAE L, et al., 2006. Arbuscular mycorrhizae increase the arsenic translocation factor in the As hyperaccumulating fern Pteris vittata L.[J]. Chemosphere, 65(1): 74-81.
DOI
URL
|
[7] |
YANG S R, DANEK TOMAS, CHENG X F, et al., 2017. Risk Assessment of Heavy Metal Pollution in Soils of Gejiu Tin Ore and Other Metal Deposits of Yunnan Province[J]. Earth and Environmental Science, 95(4): 1-6.
|
[8] |
ZHANG H Z, GUO Q J, YANG J X, et al., 2014. Cadmium accumulation and tolerance of two castor cultivars in relation to antioxidant systems[J]. Journal of Environmental Sciences, 26(10): 2048-2055.
DOI
URL
|
[9] |
陈秋平, 胥思勤, 陈洁薇, 等, 2014. 锑矿区土壤重金属污染及植物累积特征[J]. 环境科技, 27(2): 1-4.
|
|
CHENG Q P, XU S Q, CHEN J W, et al., 2014. The Pollution of Heavymetals in Soils and Characteristics of Plants Accumulation in Antimony Mining Area[J]. Environmental Science and Technology, 27(2): 1-4.
DOI
URL
|
[10] |
雷梅, 岳庆玲, 陈同斌, 2005. 湖南柿竹园矿区土壤重金属含量及植物吸收特征[J]. 生态学报, 25(5): 1146-1151.
|
|
LEI M, YUE Q L, CHEN T B, 2005. Heavy metal concentrations in soils and plants around Shizhuyuan mining area of Hu'nan Province[J]. Actaecologica Sinica, 25(5): 1146-1151.
|
[11] |
李玫, 1999. 植物对金属镉的吸收及影响因素[J]. 中山大学研究生学刊: 自然科学与医学版 (2): 27-33.
|
|
LI M, 1999. The Absorption, Allocation of Heavy Metal Cadmium in Plants and the Influencing Factors[J]. Natural Science Journal of the Graduates, Sun YAT-SEN University (2): 27-33.
|
[12] |
鲁冬梅, 李雪, 李继芬, 等, 2018. 新平县茶园核心区土壤重金属污染特征及生态风险评价[J]. 云南农业大学学报(自然科学), 33(6): 1154-1162.
|
|
LU D M, LI X, LI J F, et al., 2018. Heavy Metal Pollution Characteristics and Ecological RiskAnalysis for Soil in Tea Core Plantations of Xinping County[J]. Journal of Yunnan Agricultural University (Natural Science), 33(6): 1154-1162.
|
[13] |
牛学奎, 吴学勇, 侯娟, 等, 2018. 典型铅冶炼鼓风炉周边土壤重金属含量及化学形态研究[J]. 四川环境, 37(4): 25-28.
|
|
NIU X K, WU X Y, HOU J, et al., 2016. Study on Heavy Metal Content and Chemical Forms of Soil Around Typical Lead Smelting Blast Furnace[J]. Sichuan Environment, 37(4): 25-28.
|
[14] |
牛学奎, 吴学勇, 吴文卫, 等, 2019. 典型鼓风炉铅冶炼废渣重金属浸出特性及化学形态分析[J]. 环境工程, 37(10): 175-177, 184.
|
|
NIU X K, WU X Y, WU W W, et al., 2019. Analysis of leaching characteristics and chemical speciation of heavy metals in the slag of lead smelting by blast furnace[J]. Environmental Engineering, 37(10): 175-177, 184.
|
[15] |
彭渤, 唐晓燕, 余昌训, 等, 2011. 湘江入湖河段沉积物重金属污染及其Pb同位素地球化学示踪[J]. 地质学报, 85(2): 282-299.
|
|
PENG B, TANG X Y, XU C X, et al., 2011. Heavy Metal Contamination of Inlet Sediments of the Xiangjiang River and Pb Isotopic Geochemical Implication[J]. Acta Geologica Sinica, 85(2): 282-299.
|
[16] |
彭叶棉, 杨阳, 侯素霞, 等, 2020. 外源六价铬在土壤中的有效性及其小麦毒性效应[J]. 生态环境学报, 29(2): 369-377.
|
|
PENG Y M, YANG Y, HOU S X, et al., 2020. The Bioavailability of Exogenous Cr(Ⅵ) in Soils and Its Toxic Effect on Wheat[J]. Ecology and Environmental Sciences, 29(2): 369-377.
|
[17] |
祁珍祯, 李延升, 孙琛, 等, 2020. 电感耦合等离子体质谱法测定金银花中6种有毒元素[J]. 化学分析计量, 29(1): 18-22.
|
|
QI Z Z, LI Y S, SUN S, et al., 2020. Determination of six kinds of toxic elements in honeysuckle by ICP-MS[J]. Chemical Analysis and Meterage, 29(1): 18-22.
|
[18] |
秦丽, 祖艳群, 李元, 等, 2013. 会泽铅锌矿渣堆周边自然发生的植物重金属含量及累积特征研究[C]// 第五届全国农业环境科学学术研讨会论文集. 南京: 184-190.
|
|
QIN L, ZU Y Q, LI Y, et al., 2013. Study on Heavy Metal Contents of Seven Wild Plants Occurring Naturally in the Surrounding of Huize lead-zinc Tailings Deposited[C]// Proceedings of the Fifth National Agricultural Environmental Science Symposium. Nanjing: 184-190.
|
[19] |
秦俊梅, 白中科, 2013. 安太堡露天矿不同复垦基质和植物中重金属含量及污染评价[J]. 水土保持学报, 27(1): 176-181.
|
|
QIN J M, BAI Z K, 2013. The Content and Pollution Assessment of Heavy Metal in Reclaimed Mediums and Plants at Antaibao Opencast Mine[J]. Journal of Soil and Water Conservation, 27(1): 176-181.
|
[20] |
仇荣亮, 仇浩, 雷梅, 等, 2009. 矿山及周边地区多金属污染土壤修复研究进展[J]. 农业环境科学学报, 28(6): 1085-1091.
|
|
QIU R L, QIU H, LEI M, et al., 2009. Advances in Research on Remediation of Multi-metal Contaminated Soil in Mine and Surrounding Area[J]. Journal of Agro-Environment Science, 28(6): 1085-1091.
|
[21] |
时宇, 冉珊珊, 黄黄, 等, 2018. 黄石国家矿山公园草本植物重金属富集能力研究[J]. 生态环境学报, 27(4): 769-775.
|
|
SHI Y, RAN S S, HUANG H, et al., 2018. Enrichment Capability of Herbaceous Plants in Huangshi National Mine Park[J]. Ecology and Environmental Sciences, 27(4): 769-775.
|
[22] |
谭晓娟, 2009. 攀枝花钒钛矿区植被群落调查及植物金属含量分析研究[D]. 成都: 四川农业大学.
|
|
TANG X J, 2009. An Eeological Surveyand Research of Heavy Metal Contents on Vegtation at Panzhihua Lead/Titanium Mine Area in Sichuan Province[D]. Chengdu: Sichuan Agricultural University.
|
[23] |
魏树和, 杨传杰, 周启星, 等, 2008. 三叶鬼针草等7种常见菊科杂草植物对重金属的超富集特征[J]. 环境科学, 29(10): 2912-2918.
|
|
WEI S H, YANG C J, ZHOU Q X, et al., 2008. Hyperaccumulative Characteristics of 7 Widely Distributing Weed Species in Composite Family Especially Bidens pilosa to Heavy Metals[J]. Environmental Science, 29(10): 2912-2918.
|
[24] |
熊国焕, 黄凯, 胡若鹏, 等, 2015. 云南省铅锌冶炼行业现状及发展趋势[J]. 云南冶金, 44(4): 26-29.
|
|
XIONG G H, HUANG K, HU R P, et al., 2015. The Industry Actuality and Development Tendency of Zinc Smelting in Yunnan Province[J]. Yunnan Metallurgy, 44(4): 26-29.
|
[25] |
徐晨茗, 鲍立宁, 张瑾, 等, 2020. 凤尾蕨对铅污染土壤的修复机理研究[J]. 安徽农业大学学报, 47(2): 99-105.
|
|
XU C M, BAO L N, ZHANG J, et al., 2020. Study on the rehabilitation mechanism of Pteris crassipes on lead contaminated soil[J]. Journal of Anhui Agricultural University, 47(2): 99-105.
|
[26] |
张桂芹, 谭路遥, 张怀成, 等, 2020. 济南城市主干道降尘重金属污染特征及生态风险评价[J]. 生态环境学报, 29(1): 156-164.
|
|
ZHANG G Q, TANG L Y, ZHANG H C, et al., 2020. Heavy Metal Pollution Characteristics and Ecological Risk Assessment of Dust Falling on Urban Main Road in Jinan[J]. Ecology and Environmental Sciences, 29(1): 156-164.
|
[27] |
朱光旭, 肖化云, 郭庆军, 等, 2016. 锌冶炼渣堆场优势植物的重金属累积特征研究[J]. 生态环境学报, 25(8): 1395-1400.
|
|
ZHU G X, XIAO H Y, GUO Q J, et al., 2016. Accumulation of Heavy Metals by Dominant Plants in Zinc Smelting Slag Field[J]. Ecology and Environmental Sciences, 25(8): 1395-1400.
|