生态环境学报 ›› 2021, Vol. 30 ›› Issue (12): 2423-2430.DOI: 10.16258/j.cnki.1674-5906.2021.12.018
李富荣1,3(), 王琳清2,4, 李文英4, 吴志超1,3, 王旭1,3,*(
)
收稿日期:
2021-08-23
出版日期:
2021-12-18
发布日期:
2022-01-04
通讯作者:
*王旭(1981年生),女,研究员,主要从事农产品质量安全方面的研究。E-mail: wangxuguangzhou@126.com作者简介:
李富荣(1984年生),女,副研究员,博士,主要从事农产品产地环境安全控制方面的研究。E-mail: lifr0314@163.com
基金资助:
LI Furong1,3(), WANG Linqing2,4, LI Wenying4, WU Zhichao1,3, WANG Xu1,3,*(
)
Received:
2021-08-23
Online:
2021-12-18
Published:
2022-01-04
摘要:
农田土壤和水环境重金属污染修复是保障中国农业安全生产迫切需要解决的问题。在诸多修复技术中,植物修复技术具有低成本、易操作、环境友好等突出优势。水芹作为一种常见的水生蔬菜,具有发达的维管束组织,且适应性强,对水体和土壤中的重金属表现出较强的富集能力,因此被广泛用于环境污染修复中。文章针对水芹对不同重金属元素的吸收累积能力、不同器官的重金属累积特性、重金属耐性机理、以及在环境污染修复中的应用现状进行了综述。主要结论为:(1)水芹对土壤和水体环境中重金属Cd、Zn、Pb、Cu、Hg、As、Ag、Au等元素具有较好的富集效果;(2)重金属复合污染下水芹对各元素的吸收特性与单一元素污染情况下有所差异,存在明显的交互作用;(3)水芹对重金属的累积大多集中于根部,其作为以茎叶为食用部位的水生蔬菜,为进行植物修复的同时保障农作物安全生产提供了较好的品种资源;(4)水作和旱作模式下水芹对不同重金属的吸收累积特性存在差异,应结合重金属污染种类选择适宜的栽培模式调控措施来进行重金属污染修复;(5)水芹主要通过提高抗氧化酶活性和植物络合素等来消除活性氧物质的胁迫,从而提高其对重金属胁迫的耐受性;(6)关于水芹植物修复的应用研究主要集中于人工湿地环境修复、养殖废水治理、电镀废水重金属处理方面,但目前尚未有大规模应用。在未来的研究中,应加强水芹重金属吸收分子机理、农艺调控措施与水芹修复技术结合、水芹重金属修复技术相关标准制订等方面的深入探讨,相关工作将为更好地发挥水芹在环境重金属修复中的应用提供科学依据和技术支撑。
中图分类号:
李富荣, 王琳清, 李文英, 吴志超, 王旭. 水芹对重金属的吸收累积及其应用研究进展[J]. 生态环境学报, 2021, 30(12): 2423-2430.
LI Furong, WANG Linqing, LI Wenying, WU Zhichao, WANG Xu. Research and Application Progress on Heavy Metal Absorption and Accumulation of Oenanthe javanica[J]. Ecology and Environment, 2021, 30(12): 2423-2430.
[1] |
AN L Y, PAN Y H, WANG Z B, et al., 2011. Heavy metal absorption status of five plant species in monoculture and intercropping[J]. Plant and Soil, 345(1/2): 237-245.
DOI URL |
[2] |
AN M, WANG H, FAN H, et al., 2019. Effects of modifiers on the growth, photosynthesis, and antioxidant enzymes of cotton under cadmium toxicity[J]. Journal of Plant Growth Regulation, 38(4): 1196-1205.
DOI URL |
[3] |
ARAO T, KAWASAKI A, BABA K, et al., 2009. Effects of water management on cadmium and arsenic accumulation and dimethylarsinic acid concentrations in Japanese rice[J]. Environmental Science & Technology, 43: 9361-9367.
DOI URL |
[4] |
BHATTI S S, SAMBYAL V, NAGPAL A K, 2018. Analysis of genotoxicity of agricultural soils and meta (Fe, Mn, and Zn) accumulation in crops[J]. International Journal of Environmental Research, 12(4): 439-449.
DOI URL |
[5] |
CHITRAPRABHA K, SATHYAVATHI S, 2018. Phytoextraction of chromium from electroplating effluent by Tagetes erecta (L.)[J]. Sustainable Environment Research, 28(3): 128-134.
DOI URL |
[6] |
DAN A, OKA M, FUJII Y, et al., 2017. Removal of heavy metals from synthetic landfill leachate in lab-scale vertical flow constructed wetlands[J]. Science of the Total Environment, 584-585: 742-750.
DOI URL |
[7] |
DENG T H B, CHEN J Q, GENG K R, et al., 2021. Quantification of nickel and cobalt mobility and accumulation via the phloem in the hyperaccumulator Noccaea caerulescens (Brassicaceae)[J]. Metallomics, DOI: 10.1093/mtomcs/mfab012.
DOI |
[8] |
HATTAB S, BOUGATTASS I, HASSINE R, et al., 2019. Metals and micronutrients in some edible crops and their cultivation soils in eastern-central region of Tunisia: a comparison between organic and conventional farming[J]. Food Chemistry, 270: 293-298.
DOI URL |
[9] |
HU P J, HUANG J X, OUYANG Y N, et al., 2013. Water management affects arsenic and cadmium accumulation in different rice cultivars[J]. Environmental geochemistry and health, 35(6): 767-78.
DOI URL |
[10] |
KOVÁČIK J, ROTKOVÁ G, BUJDOŠ M, et al., 2017. Ascorbic acid protects Coccomyxa subellipsoidea against metal toxicity through modulation of ROS/NO balance and metal uptake[J]. Journal of Hazardous Materials, 339: 200-207.
DOI URL |
[11] |
KRZESLOWSKA M, RABĘDA I, BASIŃSKA A, et al., 2016. Pectineus cell wall thickenings formation: A common defense strategy of plants to cope with Pb[J]. Environmental Pollution, 214: 354-361.
DOI URL |
[12] |
LI F R, WANG X, WANG F H, et al., 2021. A risk-based approach for the safety analysis of eight trace elements in Chinese flowering cabbage (Brassica parachinensis L.) in China[J]. Journal of the Science of Food and Agriculture, 101(13): 5583-5590.
DOI URL |
[13] |
LI F R, WEN D, WANG F H, et al., 2019. Derivation of soil Pb/Cd/As thresholds for safety of vegetable planting: A case study for pakchoi in Guangdong Province, China[J]. Journal of Integrative Agriculture, 18(1): 179-189.
DOI URL |
[14] |
LIU J, LUO L Q, 2019. Uptake and transport of Pb across the iron plaque of waterlogged dropwort (Oenanthe javanica DC.) based on micro-XRF and XANES[J]. Plant and Soil, 441(1-2): 191-205.
DOI URL |
[15] |
LIU K H, LI C M, TANG S Q, et al., 2020. Heavy metal concentration, potential ecological risk assessment and enzyme activity in soils affected by a lead-zinc tailing spill in Guangxi, China[J]. Chemosphere, DOI: 10.1016/j.chemosphere.2020.126415.
DOI |
[16] |
LIU Y Y, XU Y M, HUANG Q Q, et al., 2019. Effects of chicken manure application on cadmium and arsenic accumulation in rice grains under different water conditions[J]. Environmental Science and Pollution Research International, 26(30): 30847-30856.
DOI URL |
[17] |
NORDBERG G F, 2009. Historical perspectives on cadmium toxicology[J]. Toxicology and Applied Pharmacology, 238(3): 192-200.
DOI URL |
[18] |
PANDA A, PATRA D K, ACHARYA S, et al., 2020. Assessment of the phytoremediation potential of Zinnia elegans L. plant species for hexavalent chromium through pot experiment[J]. Environmental Technology & Innovation, DOI: 10.1016/j.eti.2020.101042.
DOI |
[19] |
PUSPITO N A, BUTAR B E S, AGUNG P E, et al., 2021. Phytoremediation of electroplating wastewater by vetiver grass (Chrysopogon zizanoides L.)[J]. Scientific reports, 11(1): 14482-14482.
DOI URL |
[20] |
SHARDA P, VARTIKA M, ARUSHI G, et al., 2021. Molecular mechanisms underlying heavy metal uptake, translocation and tolerance in hyperaccumulators-an analysis: Heavy metal tolerance in hyperaccumulators[J]. Environmental Challenges, DOI: 10.1016/j.envc.2021.100197.
DOI |
[21] |
SHEN Y T, SONG Y F, 2017. Effects of organic ligands on Pb absorption and speciation changes in Arabidopsis as determined by micro X-ray fluorescence and X-ray absorption near-edge structure analysis[J]. Journal of Synchrotron Radiation, 24(2): 463-468.
DOI URL |
[22] | SREEKUMAR V P A, PRASANNAKUMARI A A, SUMITHA V, et al., 2020. Phytoremediation potential of Lagenandra ovata L. and Nelumbo nucifera Gaertn. associated with Aruvikkara Reservoir, Kerala- South India[J]. Ecology, Environment and Conservation, 26(1): 206-212. |
[23] |
STEWART T J, SZLACHETKO J, SIGG L, et al., 2015. Tracking the temporal dynamics of intracellular lead speciation in a green alga[J]. Environmental Science & Technology, 49: 11176-11181.
DOI URL |
[24] |
WEI L, HUANG Y F, HUANG L X, et al. Combined biochar and soda residues increases maize yields and decreases grain Cd/Pb in a highly Cd/Pb-polluted acid Udults soil[J]. Agriculture, Ecosystems and Environment, DOI: 10.1016/j.agee.2020.107198.
DOI |
[25] |
WU Z C, XU S J, SHI H Z, et al., 2018. Comparison of foliar silicon and selenium on cadmium absorption, compartmentation, translocation and the antioxidant system in Chinese flowering cabbage[J]. Ecotoxicology and Environmental Safety, 166: 157-164.
DOI URL |
[26] |
XU Y, SUN X L, ZHANG Q Q, et al., 2018. Iron plaque formation and heavy metal uptake in Spartina alterniflora at different tidal levels and waterlogging conditions[J]. Ecotoxicology and Environmental Safety, 153: 91-100.
DOI URL |
[27] |
YAO Z T, LI J H, XIE H H, et al., 2012. Review on remediation technologies of soil contaminated by heavy metals[J]. Procedia Environmental Sciences, 16: 722-729.
DOI URL |
[28] |
YU F M, TANG S T, SHI X W, et al., 2021. Phytoextraction of metal(loid)s from contaminated soils by six plant species: A field study[J]. Science of the Total Environment, DOI: 10.1016/j.scitotenv.2021.150282.
DOI |
[29] |
YU F M, LIU K H, YE P H, et al., 2019. Manganese tolerance and accumulation characteristics of a woody accumulator Camellia oleifera[J]. Environmental science and pollution research international, 26(21): 21329-21339.
DOI URL |
[30] |
ZHANG Y, ZHANG F, ZHANG G C, et al., 2013. Simplex and combined effects of As(III) and Acetochlor on phosphatase activity in soil[J]. Journal of Integrative Agriculture, 12(6): 1079-1086.
DOI |
[31] | ZHENG S A, ZHANG M K, DAI T, et al., 2010. Effects of incubation time and moisture on the redistribution of heavy metals in a loessial soil of China[J]. Fresenius Environmental Bulletin, 19(11): 2719-2726. |
[32] | 陈银萍, 颉海帆, 柯昀琪, 等, 2019. 不同基质人工湿地去除重金属Cd的研究[J]. 环境污染与防治, 41(9): 999-1005. |
CHEN Y P, XIE H F, KE Y Q, et al., 2019. Study of different substrates used in constructed wetlands for removal of heavy metal Cd[J]. Environmental Pollution & Control, 41(9): 999-1005. | |
[33] | 陈源高, 陈开宁, 戴全裕, 等, 2006. 5种水培蔬菜对金属元素富集水平研究[J]. 生态与农村环境学报, 22(1): 70-74. |
CHEN Y G, CHEN K N, DAI Q Y, et al., 2006. Metal Enrichment of Five Soilless Cultivated Vegetables[J]. Journal of Ecology and Rural Environment, 22(1): 70-74. | |
[34] | 代杰, 王友保, 韦晶晶, 2012. 水芹对铅耐性和积累的研究[J]. 光谱实验室, 2(3): 1513-1517. |
DAI J, WANG Y B, WEI J J, 2012. Lead Tolerance and Accumulation of Oenanthe javanica[J]. Chinese Journal of Spectroscopy Laboratory, 2(3): 1513-1517. | |
[35] | 戴全裕, 蔡述伟, 张秀英, 1998. 水芹菜对黄金废水的净化与富集作用研究[J]. 应用生态学报, 9(1): 107-109. |
DAI Q Y, CAI S W, ZHANG X Y, 1998. Purification of gold-bearing waste water by Oenanthe javanica and accumulation of gold in plant[J]. Chinese Journal of Applied Ecology, 9(1): 107-109. | |
[36] | 戴全裕, 戴文宁, 高翔, 等, 1990. 水生高等植物对废水中银的净化与富集特性研究[J]. 生态学报, 10(4): 343-348. |
DAI Q Y, DAI W N, GAO X, et al., 1990. Study of the purification and accumulation of silver in waste water by aquatic plants[J]. Acta Ecologica Sinica, 10(4): 343-348. | |
[37] | 狄广娟, 2013. 水分管理对四个水芹品种吸收积累镉的影响[D]. 南京: 南京林业大学. |
DI G J, 2013. The influence of water management on growth and cadmium uptaking of water dropwort[D]. Nanjing: Nanjing Forestry University. | |
[38] | 方妍, 张萌萌, 孙瑞莲, 2020. Cd和Pb在水芹菜中的累积及其与营养元素的关系[J]. 生态科学, 39(5): 64-72. |
FANG Y, ZHANG M M, SUN R L, 2020. Accumulation of cadmium and lead in water celery and its relationships with nutrients[J]. Ecological Science, 39(5): 64-72. | |
[39] | 韩承华, 2017. Cd、Pb、Cu、Zn对3种水生叶菜生长的影响以及Se缓解效果的研究[D]. 扬州: 扬州大学. |
HAN C H, 2017. Effects of Cd、Pb、Cu、Zn on the growth of 3 aquatic leaf vegetables and mitigation of heavy metals pollution by Se treatment[D]. Yangzhou: Yangzhou University. | |
[40] | 韩旭, 2017. 铀及其伴生重金属水生富集植物的筛选[D]. 绵阳: 西南科技大学. |
HAN X, 2017. Screening of aquatic enriched plants for Uranium and associated heavy metals[D]. Mianyang: Southwest University of Science and Technology. | |
[41] | 华大春, 徐文娟, 王昕, 2013. 镉在水芹不同器官中富集特性的研究[J]. 长江蔬菜, 18: 74-76. |
HUA D C, XU W J, WANG X, 2013. Enrichment characteristics of cadmium in different organs of Oenanthe stolonifera[J]. Journal of Changjiang Vegetables, 18: 74-76. | |
[42] | 纪雄辉, 梁永超, 鲁艳红, 等, 2007. 污染稻田水分管理对水稻吸收积累镉的影响及其作用机理[J]. 生态学报, 27(9): 3930-3939. |
JI X H, LIANG Y C, LU Y H, et al., 2007. The effect of water management on the mechanism and rate of uptake and accumulation of cadmium by rice growing in polluted paddy soil[J]. Acta Ecologica Sinica, 27(9): 3930-3939. | |
[43] | 冀泽华, 冯冲凌, 吴晓芙, 等, 2016. 人工湿地污水处理系统填料及其净化机理研究进展[J]. 生态学杂志, 35(8): 2234-2243. |
JI Z H, FENG C L, WU X F, et al., 2016. Research progress on filler application and purification mechanisms in constructed wetland wastewater treatment system[J]. Chinese Journal of Ecology, 35(8): 2234-2243. | |
[44] | 李富荣, 李敏, 朱娜, 等, 2017. 水作和旱作施用改良剂对蕹菜-土壤系统中铅镉生物有效性的影响差异[J]. 农业环境科学学报, 36(8): 1477-1483. |
LI F R, LI M, ZHU N, et al., 2017. Comparing the effects of soil amendment on Pb and Cd bioavailability in water spinach under water submersion cultivation and dry farming conditions[J]. Journal of Agro-Environment Science, 36(8): 1477-1483. | |
[45] | 李富荣, 朱娜, 杨锐, 等, 2015. 铅、镉单一/复合污染对空心菜种子萌发和幼苗生长抑制效应的品种差异[J]. 热带作物学报, 36(11): 1951-1958. |
LI F R, ZHU N, YANG R, et al., 2015. Effects of simplex and combined Pb and Cd pollution on seed germination and seedling growth of eleven Ipanoea aquatica cultivars[J]. Chinese Journal of Tropical Agriculture, 36(11): 1951-1958. | |
[46] | 李星, 2008. 人工湿地及湿地植物对电镀废水的净化和修复效果研究[D]. 金华: 浙江师范大学. |
LI X, 2008. Study on purified efficiency of electroplating wastewater by wetland plants in constructed wetland[D]. Jinhua: Zhejiang Normal University. | |
[47] | 刘义满, 魏玉翔, 唐玖珍, 等, 2020. 水生蔬菜答农民问(40): 水芹在养殖业和环境治理中有哪些主要应用? 产品质量安全性如何?[J]长江蔬菜 (21): 45-52. |
LIU Y M, WEI Y X, TANG J Z, et al., 2020. Aquatic vegetables answer farmers' question (40): What are the main applications of Oenanthe Javanica in aquaculture and environmental management? How about product quality and safety?[J]. Journal of Changjiang Vegetables (21): 45-52. | |
[48] | 龙瑞, 2014. Mn、Cd胁迫对两种水生植物的生理生化特性和根际酶活性的影响[D]. 无锡: 江南大学. |
LONG R, 2014. Effects of Mn, Cd stress on physiological and biochemical characteristics associated with rhizospheric enzyme activity of two aquatic plants[D]. Wuxi: Jiangnan University. | |
[49] | 吕凯, 张彩丽, 2017. 中国土壤重金属污染修复研究的文献计量分析[J]. 农学学报, 7(5): 56-59, 95. |
LV K, ZHANG C L, 2017. Biliometric analysis of soil heavy metal pollution restoration in China[J]. Journal of Agriculture, 7(5): 56-59, 95. | |
[50] | 蒙敏, 黄雪芬, 李磊, 等, 2017. 砷胁迫对桉树抗氧化酶活性的影响[J]. 基因组学与应用生物学, 36(12): 5289-5295. |
MENG M, HUANG X F, LI L, et al., 2017. Effects of arsenic stress on activities of antioxidant enzymes of Eucalyptus[J]. Genomics and Applied Biology, 36(12): 5289-5295. | |
[51] | 皮宇, 陈志强, 戴全裕, 等, 1991. 水芹菜对含银废水的净化功能[J]. 城市环境与城市生态, 4(1): 14-19, 29. |
PI Y, CHEN Z Q, DAI Q Y, et al., 1991. Purification of silver containing wastewater by water celery[J]. Urban environment& Urban Ecology, 4(1): 14-19, 29. | |
[52] | 尚素微, 吴翠蓉, 蒋步云, 2014. 浙江省3种野菜重金属含量的测定[J]. 江苏农业科学, 42(04): 266-267. |
SHANG S W, WU C R, JIANG B Y, 2014. Determination of heavy metals in three wild vegetables in Zhejiang Province[J]. Jiangsu Agricultural Sciences, 42(4): 266-267. | |
[53] | 施沁璇, 孙博怿, 胡晓波, 等, 2018. 水生植物对养殖池塘重金属污染底泥的修复作用[J]. 安全与环境学报, 18(5): 1956-1962. |
SHI Q X, SUN B Z, HU X B, et al., 2018. Restoration effect on the heavy metals in the freshwater aquaculture pond sediments with hydrophytes[J]. Journal of Safety and Environment, 18(5): 1956-1962. | |
[54] | 孙静, 何家东, 李乾, 2018. 多种水生植物对铀的富集特性对比研究[J]. 南华大学学报(自然科学版), 32(3): 27-31. |
SUN J, HE J D, LI Q, 2018. Comparative analysis about uranium accumulation characteristics of various aquatic plants[J]. Journal of University of South China (Science and Technology), 32(3): 27-31. | |
[55] | 唐明明, 孙汉巨, 赵金龙, 等, 2019. 超微粉碎对水芹粉末理化性质及抗氧化活性的影响[J]. 现代食品科技, 35(7): 55-65. |
TANG M M, SUN H J, ZHAO J L, et al., 2019. Effects of superfine grinding on physicochemical properties and antioxidant activity of water dropwort powder[J]. Modern Food Science and Technology, 35(7): 55-65. | |
[56] | 唐夏军, 臧一天, 王尚江, 等, 2019. 猪场沼液对水芹菜重金属含量的影响[J]. 家畜生态学报, 40(12): 65-69. |
TANG X J, ZANG Y T, WANG S J, et al., 2019. Effect of biogas slurry from pig farms on the content of heavy metals elements of water celery[J]. Journal of Domestic Animal Ecology, 40(12): 65-69. | |
[57] | 陶玲, 李晓莉, 彭亮, 等, 2020. 蔬菜漂浮湿地对池塘养殖尾水的异位处理效果[J]. 淡水渔业, 50(6): 52-59. |
TAO L, LI X L, PENG L, et al., 2020. Treatment efficiency of a floating vegetable wetland for the fishpond effluent[J]. Freshwater Fisheries, 50(6): 52-59. | |
[58] | 童宁, 邓风, 2013. 浅议人工湿地经济植物的功能和价值[J]. 工业安全与环保, 39(8): 22-25. |
TONG N, DENG F, 2013. Brief discussion on the functions and values of the economic plants in the constructed wetlands[J]. Industrial Safety and Environmental Protection, 39(8): 22-25. | |
[59] | 王方园, 杨倩, 王娟, 等, 2020. 砷和汞对水芹毒性影响及其吸收富集效应[J]. 浙江师范大学学报(自然科学版), 43(4): 430-437. |
WANG F Y, YANG Q, WANG J, et al., 2020. Effects of arsenic and mercury on the toxicity of Oenanthe javanica and its absorption and enrichment effect[J]. Journal of Zhejiang Normal University (Natural Sciences), 43(4): 430-437. | |
[60] | 王华君, 2019. 安徽水芹发展现状及栽培技术[J]. 安徽农学通报, 25(11): 56-84. |
WANG H J, 2019. Current status and cultivation techniques of cress in Anhui Province[J]. Anhui Agricultural Science Bulletin, 25(11): 56-84. | |
[61] | 王昕, 2015. Cd、Pb及其复合污染对水芹生长、品质影响和富集特性研究[D]. 合肥: 安徽农业大学. |
WANG X, 2015. Effects of Cd、Pb and their compound pollution on the growth and nutritional quality of water fennel and the enrichment characteristics[D]. Hefei: Anhui Agricultural University. | |
[62] | 魏玉媛, 龚玉莲, 曾碧健, 等, 2020. 蕹菜对镉吸收积累及应用研究进展[J]. 绿色科技 (4): 14-16, 19. |
WEI Y Y, GOGN Y L, ZENG B J, et al., 2020. Research progress on Ipomoea aquatica’s absorptionand accumulation of cadmium[J]. Journal of Green Science and Technology (4): 14-16, 19. | |
[63] | 谢荣秀, 万福绪, 2011. 太湖地区水芹及其生长土壤中重金属含量分析[J]. 安徽农业科学, 39(20): 12179-12181. |
XIE R X, WAN F X, 2011. Determination and analysis of heavy metal in wild cress and its growing soil in Taihu[J]. Journal of Anhui Agricultural Sciences, 39(20): 12179-12181. | |
[64] | 杨晓秋, 丁枫华, 孔文杰, 等, 2005. 几种野生蔬菜重金属积累状况的调查研究[J]. 广东微量元素科学, 12(7): 12-16. |
YANG X Q, DING F H, KONG W J, et al., 2005. Investigation on accumulation of heavy metals in several wild vegetables[J]. Guangdong Trace Elements Science, 12(7): 12-16. | |
[65] | 姚天月, 王丹, 李泽华, 2016. U、Cd单一及复合污染对水芹生长和生理特性影响[J]. 农业环境科学学报, 35(5): 871-877. |
YAO T Y, WANG D, LI Z H, 2016. Effects of single and combined pollution of uranium and cadmium on growth and physiological characteristics of Oenanthe javanica[J]. Journal of Agro-Environment Science, 35(5): 871-877. | |
[66] | 张静, 赵秀侠, 汪翔, 等, 2015. 重金属镉(Cd)胁迫对水芹生长及生理特性的影响[J]. 植物生理学报, 51(11): 1969-1974. |
ZHANG J, ZHAO X X, WANG X, et al., 2015. Effects of cadmium stress on the growth and physiological property of Oenanthe javanica[J]. Plant Physiology Journal, 51(11): 1969-1974. | |
[67] | 张晓斌, 刘鹏, 2016. 生态浮床处理电镀行业重金属废水的植物优势种筛选[J]. 绿色科技 (12): 103-104. |
ZHANG X B, LIU P, 2016. Screening of dominant plant species for the treatment of heavy metal wastewater in electroplating industry by ecological floating bed[J]. Journal of Green Science and Technology (12): 103-104. | |
[68] | 张燕, 江建锋, 黄奇娜, 等, 2021. 水分管理调控水稻镉污染的研究与应用进展[J]. 中国稻米, 27(3): 10-16. |
ZHANG Y, JIANG J F, HUANG Q N, et al., 2021. Advances in research and application of water management related to cadmium contamination in rice[J]. China Rice, 27(3): 10-16. | |
[69] | 张志敏, 朱祥, 丁新泉, 等, 2017. 水生植物对电镀废水中重金属的修复研究[J]. 环境科学导刊, 36(1): 6-10, 45. |
ZHANG Z M, ZHU X, DING X Q, et al., 2017. Study on phytoremediation of heavy metals in electroplate wastewater by hydrophyte[J]. Environmental Science Survey, 36(1): 6-10, 45. | |
[70] | 赵云青, 周怡, 黄兴洁, 等, 2019. 重金属在矿区土壤--蔬菜系统的吸收与迁移特性研究[J]. 土壤通报, 50(5): 1233-1238. |
ZHAO Y Q, ZHOU Y, HUANG X J, et al., 2019. Absorption and migration of heavy metals in soil-vegetable system in mining area[J]. Chinese Journal of Soil Science, 50(5): 1233-1238. | |
[71] | 周化斌, 郭水良, 黄朝表, 等, 2002. 金华市郊土壤和杂草元素含量特征及数量分析[J]. 广西科学, 9(3): 231-240. |
ZHOU H B, GUO S L, HUANG C B, et al., 2002. Characteristics and quantitative analysis of elements in weeds and soil in jinhua suburb[J]. Guangxi Sciences, 9(3): 231-240. |
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