Ecology and Environmental Sciences ›› 2026, Vol. 35 ›› Issue (3): 469-477.DOI: 10.16258/j.cnki.1674-5906.2026.03.013
• Research Article [Environmental Science] • Previous Articles Next Articles
WU Yuqing1(
), GUO Jie1, WU Jiahui2, LIU Xucheng2,*(
), ZHAO Jiangang1,3,*(
)
Received:2025-04-29
Revised:2025-08-27
Accepted:2025-09-30
Online:2026-03-18
Published:2026-03-13
吴宇晴1(
), 郭洁1, 吴嘉慧2, 刘谞承2,*(
), 赵建刚1,3,*(
)
通讯作者:
*E-mail: 作者简介:吴宇晴(2002年生),女,硕士研究生,研究方向为植物生态学。E-mail: wuyuqing3316@163.com
基金资助:CLC Number:
WU Yuqing, GUO Jie, WU Jiahui, LIU Xucheng, ZHAO Jiangang. Study on the Remediation Effect of the Combination of Soil Amendment and Plant on Pb Pollution in Ion-adsorption Rare Earth Mine[J]. Ecology and Environmental Sciences, 2026, 35(3): 469-477.
吴宇晴, 郭洁, 吴嘉慧, 刘谞承, 赵建刚. 土壤改良剂与植物复合对离子型稀土矿Pb污染的修复效果研究[J]. 生态环境学报, 2026, 35(3): 469-477.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.jeesci.com/EN/10.16258/j.cnki.1674-5906.2026.03.013
| 材料 | pH | 有机质质量分数/ (g·kg−1) | 阳离子交换量/ (cmol·kg−1) | 有效磷质量分数/ (mg·kg−1) |
|---|---|---|---|---|
| 供试土壤 | 4.18 | 1.24 | 4.77 | 3.00 |
Table 1 Basic properties of soils in experimental mining areas
| 材料 | pH | 有机质质量分数/ (g·kg−1) | 阳离子交换量/ (cmol·kg−1) | 有效磷质量分数/ (mg·kg−1) |
|---|---|---|---|---|
| 供试土壤 | 4.18 | 1.24 | 4.77 | 3.00 |
| 等级 | 土壤pH | 有机质质量分数/(g·kg−1) |
|---|---|---|
| 一级 | >8.5 | >40.0 |
| 二级 | 7.5-8.5 | 30.0-40.0 |
| 三级 | 6.5-7.5 | 20.0-30.0 |
| 四级 | 5.5-6.5 | 10.0-20.0 |
| 五级 | 4.5-5.5 | 6.0-10.0 |
| 六级 | <4.5 | <6.0 |
Table 2 Soil pH and organic matter content classification standards
| 等级 | 土壤pH | 有机质质量分数/(g·kg−1) |
|---|---|---|
| 一级 | >8.5 | >40.0 |
| 二级 | 7.5-8.5 | 30.0-40.0 |
| 三级 | 6.5-7.5 | 20.0-30.0 |
| 四级 | 5.5-6.5 | 10.0-20.0 |
| 五级 | 4.5-5.5 | 6.0-10.0 |
| 六级 | <4.5 | <6.0 |
| [1] |
ALI H, KHAN E, SAJAD M A, 2013. Phytoremediation of heavy metals—concepts and applications[J]. Chemosphere, 91(7): 869-881.
DOI URL |
| [2] |
ALVARENGA P, GONÇALVES A P, FERNANDES R M, et al., 2008. Evaluation of composts and liming materials in the phytostabilization of a mine soil using perennial ryegrass[J]. Science of the Total Environment, 406(1-2): 43-56.
DOI PMID |
| [3] |
ALVES L A, TIECHER T L, FLORES J P M, et al., 2021. Soil chemical properties and crop response to gypsum and limestone on a coarse-textured Ultisol under no-till in the Brazilian Pampa biome[J]. Geoderma Regional, 25: e00372.
DOI URL |
| [4] |
AMIRAHMADI E, GHORBANI M, KREXNER T, et al., 2024. Life cycle assessment of biochar and cattle manure application in sugar beet cultivation-Insights into root yields, white sugar quality, environmental aspects in field and factory phases[J]. Journal of Cleaner Production, 476: 143772.
DOI URL |
| [5] |
CHANG C S, SUNG J M, 2004. Nutrient uptake and yield responses of peanuts and rice to lime and fused magnesium phosphate in an acid soil[J]. Field Crops Research, 89(2-3): 319-325.
DOI URL |
| [6] |
CHAUHAN D K, YADAV V, VACULÍK M, et al., 2021. Aluminum toxicity and aluminum stress-induced physiological tolerance responses in higher plants[J]. Critical Reviews in Biotechnology, 41(5): 715-730.
DOI URL |
| [7] | COLLINS C, 2013. Uptake of organic pollutants and potentially toxic elements (PTEs) by crops[M]. Persistent Organic Pollutants and Toxic Metals in Foods. Woodhead Publishing: 129-144. |
| [8] |
COOK R L, HESTERBERG D, 2013. Comparison of trees and grasses for rhizoremediation of petroleum hydrocarbons[J]. International Journal of Phytoremediation, 15(9): 844-860.
PMID |
| [9] |
CREAMER C A, LEEWIS M C, KRACMAROVA-FARREN M, et al., 2024. A combined compost, dolomite, and endophyte addition is more effective than single amendments for improving phytorestoration of metal contaminated mine tailings[J]. Plant and Soil, 497(1): 219-240.
DOI |
| [10] |
DOHERTY S J, TIGHE M K, WILSON S C, 2017. Evaluation of amendments to reduce arsenic and antimony leaching from co-contaminated soils[J]. Chemosphere, 174: 208-217.
DOI PMID |
| [11] |
HUANG B, YANG G J, LEI J C, et al., 2025. A partitioned conditioned Latin hypercube sampling method considering spatial heterogeneity in digital soil mapping[J]. Scientific Reports, 15(1): 12851.
DOI |
| [12] |
HUANG S X, LI Z H, YU J X, et al., 2021. Vertical distribution and occurrence state of the residual leaching agent (ammonium sulfate) in the weathered crust elution-deposited rare earth ore[J]. Journal of Environmental Management, 299: 113642.
DOI URL |
| [13] |
IMPELLITTERI C A, 2005. Effects of pH and phosphate on metal distribution with emphasis on As speciation and mobilization in soils from a lead smelting site[J]. Science of the Total Environment, 345(1-3): 175-190.
PMID |
| [14] |
KONG Y L, MA R N, LI G X, et al., 2022. Impact of biochar, calcium magnesium phosphate fertilizer and spent mushroom substrate on humification and heavy metal passivation during composting[J]. Science of the Total Environment, 824: 153755.
DOI URL |
| [15] |
LI Z Y, YANG S X, PENG X Z, et al., 2018. Field comparison of the effectiveness of agricultural and nonagricultural organic wastes for aided phytostabilization of a Pb-Zn mine tailings pond in Hunan Province, China[J]. International Journal of Phytoremediation, 20(12): 1264-1273.
DOI URL |
| [16] |
LIU W S, GUO M N, LIU C, et al., 2019. Water, sediment and agricultural soil contamination from an ion-adsorption rare earth mining area[J]. Chemosphere, 216: 75-83.
DOI URL |
| [17] |
LIU Z F, LIU G H, FU B J, et al., 2008. Relationship between plant species diversity and soil microbial functional diversity along a longitudinal gradient in temperate grasslands of Hulunbeir, Inner Mongolia, China[J]. Ecological Research, 23(3): 511-518.
DOI URL |
| [18] |
MA B L, LIANG C, GREGORICH E G, et al., 2024. Nitrogen fertilizer replacement value of stockpiled and rotted dairy cattle manures for corn (Zea mays L.) from a long-term study[J]. Field Crops Research, 315: 109455.
DOI URL |
| [19] |
MAHAR A, PING W, RONGHUA L I, et al., 2015. Immobilization of lead and cadmium in contaminated soil using amendments: A review[J]. Pedosphere, 25(4): 555-568.
DOI URL |
| [20] |
NARAMABUYE F X, HAYNES R J, 2006. Effect of organic amendments on soil pH and Al solubility and use of laboratory indices to predict their liming effect[J]. Soil science, 171(10): 754-763.
DOI URL |
| [21] |
OBERHAGEMANN K, HOSSAIN M M, 2011. Geotextile bag revetments for large rivers in Bangladesh[J]. Geotextiles and Geomembranes, 29(4): 402-414.
DOI URL |
| [22] |
RAHMAN M E, UDDIN M K, SHAMSUZZAMAN S M, et al., 2024. Potential use of Pennisetum purpureum for phytoremediation of arsenic in treatment sand: A phytotoxicity study[J]. Biocatalysis and Agricultural Biotechnology, 60: 103300.
DOI URL |
| [23] |
ROMERO-FREIRE A, PEINADO F J M, VAN GESTEL C A M, 2015. Effect of soil properties on the toxicity of Pb: Assessment of the appropriateness of guideline values[J]. Journal of Hazardous Materials, 289: 46-53.
DOI URL |
| [24] |
SITIENEI R, QI Z, GRANT B, et al., 2025. A new framework for simulating C decomposition and emissions from land applied biosolids and manures using the denitrification and decomposition model[J]. Science of The Total Environment, 969: 178913.
DOI URL |
| [25] |
SOE N C, FUJIMORI T, SHIOTA K, et al., 2025. Assessing the efficacy of phosphate and lime amendments in immobilizing three forms of lead in contaminated soil: An in vivo study on C57/BL6 mice simulating environmentally realistic exposure pathways[J]. Chemosphere, 374: 144201.
DOI URL |
| [26] |
TAN W N, LI Z A, QIU J, et al., 2011. Lime and phosphate could reduce cadmium uptake by five vegetables commonly grown in South China[J]. Pedosphere, 21(2): 223-229.
DOI URL |
| [27] |
WANG F Y, ZHANG S Q, CHENG P, et al., 2020. Effects of soil amendments on heavy metal immobilization and accumulation by maize grown in a multiple-metal-contaminated soil and their potential for safe crop production[J]. Toxics, 8(4): 102.
DOI URL |
| [28] |
WANG L, JI B, HU Y H, et al., 2017. A review on in situ phytoremediation of mine tailings[J]. Chemosphere, 184: 594-600.
DOI PMID |
| [29] | WANG M, XIAN J J, 2017. Effects of applying lime and calcium montmorillonite on nitrification dynamics in acidic soil[J]. Journal of Agriculture Resources and Environment, 34(1): 47. |
| [30] |
WIANGKHAM N, PRAPAGDEE B, 2018. Potential of Napier grass with cadmium-resistant bacterial inoculation on cadmium phytoremediation and its possibility to use as biomass fuel[J]. Chemosphere, 201: 511-518.
DOI PMID |
| [31] |
WU S H, LI K, DIAO T T, et al., 2025. Influence of continuous fertilization on heavy metals accumulation and microorganism communities in greenhouse soils under 22 years of long-term manure organic fertilizer experiment[J]. Science of The Total Environment, 959: 178294.
DOI URL |
| [32] |
YANG J Q, OUYANG L N, CHEN S X, et al., 2024. Amendments affect the community assembly and co-occurrence network of microorganisms in Cd and Pb tailings of the Eucalyptus camaldulensis rhizosphere[J]. Science of The Total Environment, 930: 172365.
DOI URL |
| [33] |
YANG M J, LIANG X L, MA L Y, et al., 2019. Adsorption of REEs on kaolinite and halloysite: A link to the REE distribution on clays in the weathering crust of granite[J]. Chemical Geology, 525: 210-217.
DOI URL |
| [34] |
ZENG F R, ALI S, ZHANG H T, et al., 2011. The influence of pH and organic matter content in paddy soil on heavy metal availability and their uptake by rice plants[J]. Environmental Pollution, 159(1): 84-91.
DOI PMID |
| [35] |
ZEWIDE I, ADEME A, 2025. Unlocking faba bean (Vicia faba L.) potential: How cattle manure and fertilizer boost yields in Kaffa Zone, South-Western Ethiopia[J]. Heliyon, 11(2): e41771.
DOI URL |
| [36] |
ZHANG J, ZHAO S C, XU Y, et al., 2017. Nitrate stimulates anaerobic microbial arsenite oxidation in paddy soils[J]. Environmental Science & Technology, 51(8): 4377-4386.
DOI URL |
| [37] |
ZHANG Q Y, REN F T, LI F D, et al., 2020. Ammonia nitrogen sources and pollution along soil profiles in an in-situ leaching rare earth ore[J]. Environmental Pollution, 267: 115449.
DOI URL |
| [38] | 鲍士旦, 2000. 土壤农化分析[M]. 3版. 北京: 中国农业出版社. |
| BAO S D, 2000. Soil agrochemical analysis[M]. 3rd ed. Beijing: China Agricultural Press. | |
| [39] | 蔡奇英, 刘以珍, 管毕财, 等, 2013. 南方离子型稀土矿的环境问题及生态重建途径[J]. 国土与自然资源研究 (5): 52-54. |
| CAI Q Y, LIU Y Z, GUAN B C, et al., 2013. Environmental Issues and ecological restoration of ion-absorbed-type rare earth deposit in south China[J]. Territory & Natural Resources Study (5): 52-54. | |
| [40] | 陈柯罕, 沈飞, 胡妮, 等, 2023. 赣南某稀土矿山及其周边基本农田土壤重金属分布特征及肥力等级评价研究[J]. 江西农业学报, 35(10): 111-119. |
| CHEN K H, SHEN F, HU N, et al., 2023. Distribution characteristics of soil heavy metals and fertility level evaluation in a rare earth mine and its surrounding basic farmland in Southern Jiangxi province[J]. Acta Agriculturae Jiangxi, 35(10): 111-119. | |
| [41] | 陈思, 2012. 渗沥液污染黄棕壤生态修复研究[D]. 武汉: 华中科技大学. |
| CHEN S, 2012. Research of ecological restoration of yellow brown soil polluted by leachate[D]. Wuhan: Huazhong University of Science and Technology. | |
| [42] | 程建忠, 车丽萍, 2010. 中国稀土资源开采现状及发展趋势[J]. 稀土, 31(2): 65-69, 85. |
| CHENG J Z, CHE L P, 2010. Current mining situation and potential development of rare earth in China[J]. Chinese Rare Earths, 31(2): 65-69, 85. | |
| [43] | 程胜, 林龙勇, 李俊春, 等, 2024. 离子吸附型稀土矿区生态环境问题与土壤修复技术研究进展[J]. 地球化学, 53(1): 17-29. |
| CHENG S, LIN L Y, LI J C, et al., 2024. Research progress on eco-environmental problems and soil remediation technologies of ion-adsorption type rare earth mining areas[J]. Geochimica, 53(1): 17-29. | |
| [44] | 冯锡鸿, 赵金华, 2009. 育苗基质中腐熟牛粪用量对番茄、甜瓜幼苗生长的影响[J]. 中国农学通报, 25(8): 230-232. |
| FENG X H, ZHAO J H, 2009. Effects of the amount of cow manure compost on the seedling growth of tomato and melon[J]. Chinese Agricultural Science Bulletin, 25(8): 230-232. | |
| [45] | 国家林业局, 1999. 森林土壤阳离子交换量的测定:LY/T1243—1999[S]. 北京: 中国标准出版社. |
| State Forestry Bureau, 1999. Determinationofcationexchangecapacityinforestsoils:LY/T1243—1999[S]. Beijing: China Standards Press. | |
| [46] | 韩奕彤, 罗育池, 王刚, 等, 2024. 典型离子型稀土矿区氮污染地下水原位微生物修复技术研究[J]. 环境科学研究, 37(11): 2391-2400. |
| HAN Y T, LUO Y C, WANG G, et al., 2024. In-situ bioremediation technology for nitrogen-contaminated groundwater in ionic rare earth mining area[J]. Research of Environmental Sciences, 37(11): 2391-2400. | |
| [47] | 黄璐, 黄顺香, 杨智, 等, 2025. 生物炭和凹凸棒对离子型稀土浸矿废弃地土壤改良效果[J]. 有色金属科学与工程, 16(3): 492-502. |
| HUANG L, HUANG S X, YANG Z, et al., 2025. Effect of biochar and attapulgite on soil improvement of ionic rare earth leaching wasteland[J]. Nonferrous Metals Science and Engineering, 16(3): 492-502. | |
| [48] | 李海云, 姚拓, 张建贵, 等, 2018. 东祁连山退化高寒草地土壤细菌群落与土壤环境因子间的相互关系[J]. 应用生态学报, 29(11): 3793-3801. |
| LI H Y, YAO T, ZHANG J G, et al., 2018. Relationship between soil bacterial community and environmental factors in the degraded alpine grassland of eastern Qilian Mountains, China[J]. Chinese Journal of Applied Ecology, 29(11): 3793-3801. | |
| [49] | 李勤奋, 杜卫兵, 李志安, 等, 2006. 金属矿区芒草种群对重金属的积累及其与土壤特性的关系[J]. 生态学杂志, 25(3): 255-258, 264. |
| LI Q F, DU W B, LI Z A, et al., 2006. Heavy metals accumulation in mining area's Miscanthus sinensis populations and its relationship with soil characters[J]. Chinese Journal of Ecology, 25(3): 255-258, 264. | |
| [50] | 李甜田, 康禄华, 李平, 等, 2022. 香根草在离子型稀土堆浸矿场的修复应用研究[J]. 中国稀土学报, 40(1): 153-160. |
| LI T T, KANG L H, LI P, et al., 2022. Repair and application of vetiver on ion-type rare earth heap leaching mine[J]. Journal of the Chinese Society of Rare Earths, 40(1): 153-160. | |
| [51] | 梁凯粼, 王鹏, 张馨方, 等, 2025. 腐熟牛粪在丘陵烟田的碳氮矿化特征及对土壤养分的影响[J]. 中国烟草科学, 46(1): 7-15. |
| LIANG K L, WANG P, ZHANG X F, et al., 2025. Carbon and nitrogen mineralization characteristics of decomposed cow dung in hilly tobacco field and its effect on soil nutrients[J]. Chinese Tobacco Science, 46(1): 7-15. | |
| [52] | 刘胜洪, 张雅君, 杨妙贤, 等, 2014. 稀土尾矿区土壤重金属污染与优势植物累积特征[J]. 生态环境学报, 23(6): 1042-1045. |
| LIU S H, ZHANG Y J, YANG M X, et al., 2014. Heavy metal contamination of soil and concentration of dominant plants in rare earth mine tailing area[J]. Ecology and Environmental Sciences, 23(6): 1042-1045. | |
| [53] | 刘兴瑞, 刁静茹, 张淋淋, 等, 2022. 化学强化植物修复复合污染土壤研究进展[J]. 环境化学, 41(4): 1335-1347. |
| LIU X R, DIAO J R, ZHANG L L, et al., 2022. Research progress on chemically enhanced phytoremediation of co-contaminated soil[J]. Environmental Chemistry, 41(4): 1335-1347. | |
| [54] | 刘影, 伍钧, 杨刚, 等, 2014. 3种能源草在铅锌矿区土壤中的生长及其对重金属的富集特性[J]. 水土保持学报, 28(5): 291-296. |
| LIU Y, WU J, YANG G, et al., 2014. The growth of three kinds of energy grass in lead-zinc mining area and their bioaccumulation characteristics of heavy metals[J]. Journal of Soil and Water Conservation, 28(5): 291-296. | |
| [55] | 孟安华, 吴景贵, 2015. 不同处理牛粪对植菜土壤腐殖质结构特征的影响[J]. 水土保持学报, 29(4): 223-228, 266. |
| MENG A H, WU J G, 2015. Effects of different cow dung treatments on humus structure of vegetable planting soil[J]. Journal of Soil Water Conservation, 29(4): 223-228, 266. | |
| [56] | 农业部, 2014. 土壤检测第7部分:土壤有效磷的测定:NY/T1121.7—2014[S]. 北京: 农业出版社. |
| Ministry of Agriculture, 2014. SoilTestingPart7:Determinationofavailablephosphorusinsoil:NY/T1121.7—2014[S]. Beijing: Agricultural Press. | |
| [57] | 全国土壤普查办公室, 1998. 中国土壤[M]. 北京: 中国农业出版社:356. |
| National Soil Census Office, 1998. Chinese soils[M]. Beijing: China Agricultural Press:356. | |
| [58] | 沈心涛, 涂保华, 刘朝阳, 等, 2025. 酸性逆境土壤中根际微生物调控植物根系构型的作用机制[J]. 环境科学, 46(1): 570-578. |
|
SHEN X T, TU B H, LIU C Y, et al., 2025. Mechanisms of rhizosphere microorganisms in regulating plant root system architecture in acidic soils[J]. Environmental Science, 46(1): 570-578.
DOI URL |
|
| [59] | 生态环境部国家市场监督管理总局, 2018. 土壤环境质量农用地土壤污染风险管控标准[M]. 北京: 中国环境科学出版社. |
| Ministry of Ecology and Environment of the People's Republic of China, 2018, Standardization administration of the People’s Republic of China. Soil environmental quality-control standards of soil pollution risk for agricultural land (trial) (GB 15618—2018)[M]. Beijing: China Environmental Science Press. | |
| [60] | 生态环境部, 2019a. 土壤pH值的测定电位法:HJ962—2018[S/OL]. 北京: 中国环境出版社. https://www.mee.gov.cn/ywgz/fgbz/bz/bzwb/jcffbz/201808/W020180815584753007210.pdf. |
| Ministry of Ecology and Environment, 2019. DeterminationofsoilpHbypotentiometricmethod:HJ962—2018[S/OL]. Beijing: China Environmental Press. https://www.mee.gov.cn/ywgz/fgbz/bz/bzwb/jcffbz/201808/W020180815584753007210.pdf. | |
| [61] | 生态环境部, 2019b. 土壤和沉积物铜、锌、铅、镍、铬的测定火焰原子吸收分光光度法:HJ491—2019[S]. 北京: 中国环境出版社. |
| Ministry of Ecology and Environment, 2019. Determinationofcopper,zinc,lead,nickelandchromiuminsoilandsedimentsbyflameatomicabsorptionspectrometrymethod:HJ491—2019[S]. Beijing: China Environmental Press. | |
| [62] |
淑敏, 同拉嘎, 红艳, 等, 2025. 生物炭改良的风沙地植物-土壤-微生物生态化学计量特征及其内稳性[J]. 干旱区研究, 42(4): 718-729.
DOI |
|
SHU M, TONG L G, HONG Y, et al., 2025. Ecostoichiometric characteristics and homeostasis of the plant-soil-microbial ecosystem in eolian sandy land amended with biochar[J]. Arid Zone Research, 42(4): 718-729.
DOI |
|
| [63] |
王芳, 李伟, 刘鑫, 等, 2022. 紫花苜蓿根际土壤细菌群落对腐熟牛粪响应[J]. 草地学报, 30(3): 603-611.
DOI |
|
WANG F, LI W, LIU X, et al., 2022. Bacteria communities of Medicago sativa rhizosphere soil in response to composted cow manure[J]. Acta Agrestia Sinica, 30(3): 603-611.
DOI |
|
| [64] | 王强, 耿增超, 许晨阳, 等, 2020. 施用生物炭对塿土土壤微生物代谢养分限制和碳利用效率的影响[J]. 环境科学, 41(5): 2425-2433. |
| WANG Q, GENG Z C, XU C Y, et al., 2020. Effects of biochar application on soil microbial nutrient limitations and carbon use efficiency in lou soil[J]. Environmental Science, 41(5): 2425-2433. | |
| [65] | 王瑞苹, 2012. 江西赣南离子型稀土矿原地浸矿可能引发的环境问题[J]. 科技资讯 (33): 150-151. |
| WANG R P, 2012. Possible environmental issues arising from in situ leaching of ionic rare earth mines in Gannan, Jiangxi Province[J]. Science & Technology Information (33): 150-151. | |
| [66] |
吴慧, 吴程龙, 张仕颖, 等, 2021. 施用有机-无机改良剂对锡尾矿化学属性的影响[J]. 生态环境学报, 30(11): 2244-2250.
DOI |
| WU H, WU C L, ZHANG S Y, et al., 2021. Effects of applying organic-inorganic modifiers on the chemical properties of tin tailings[J]. Ecology and Environment, 30(11): 2244-2250. | |
| [67] | 杨帆, 徐洋, 崔勇, 等, 2017. 近30年中国农田耕层土壤有机质含量变化[J]. 土壤学报, 54(5): 1047-1056. |
| YANG F, XU Y, CUI Y, et al., 2017. Variation of soil organic matter content in croplands of China over the last three decades[J]. Acta Pedologica Sinica, 54(5): 1047-1056. | |
| [68] | 杨兰, 李冰, 王昌全, 等, 2016. 牛粪配合无机改良剂对稻田土壤Cd赋存形态及生物有效性的影响[J]. 生态与农村环境学报, 32(4): 651-658. |
| YANG L, LI B, WANG C Q, et al., 2016. Effects of decomposed cattle dung coupled with inorganic soil ameliorants on speciation and bioavailability of cadmium in paddy soil[J]. Journal of Ecology and Rural Environment, 32(4): 651-658. | |
| [69] | 于金鹏, 晁赢, 阎祥慧, 等, 2024. 土壤重金属污染钝化修复研究进展[J]. 生态科学, 43(4): 226-233. |
| YU J P, CHAO Y, YAN X H, et al., 2024. Research progress on passivation remediation of soil heavy metal pollution[J]. Ecological Science, 43(4): 226-233. | |
| [70] | 袁平旺, 王议, 王黎栋, 等, 2022. 粤北某离子吸附型稀土矿地下水丰枯水期变化及污染评价[J]. 水土保持通报, 42(2): 291-299. |
| YUAN P W, WANG Y, WANG L D, et al., 2022. Change and pollution evaluation of groundwater from wet and dry periods of ion-adsorbed rare earth mine in northern Guangdong province[J]. Bulletin of Soil and Water Conservation, 42(2): 291-299. | |
| [71] | 袁平旺, 王黎栋, 何培雍, 等, 2023. 粤北某离子吸附型稀土矿山土壤和地表水重金属分布及风险评价[J]. 中国环境监测, 39(1): 146-158. |
| YUAN P W, WANG L D, HE P Y, et al., 2023. Distribution and risk assessment of heavy metals in soil and surface water of an ion-absorbed rare earth mine in northern Guangdong[J]. Environmental Monitoring in China, 39(1): 146-158. | |
| [72] | 曾诗媛, 丁立忠, 马闪闪, 等, 2019. 施用沼渣、黄腐酸钾、钙镁磷肥对退化山核桃林的改土和增产效果[J]. 江苏农业学报, 35(3): 618-623. |
| ZENG S Y, DING L Z, MA S S, et al., 2019. Effect of biogas residue, potassium humate and calcium-magnesium phosphate application on improving soil in degraded Carya cathayensis forest and its nut yield[J]. Jiangsu Journal of Agricultural Sciences, 35(3): 618-623. | |
| [73] | 张琳, 2017. 不同植物组合对稀土矿场土壤生态修复的研究[D]. 仲恺农业工程学院. |
| ZHANG L, 2017. Effect of different combination of phytoremediation on soil ecological restoration at the exploited rare earth mine site[D]. Zhongkai University of Agriculture and Engineering. | |
| [74] | 张塞, 于扬, 王登红, 等, 2020. 赣南离子吸附型稀土矿区土壤重金属形态分布特征及生态风险评价[J]. 岩矿测试, 39(5): 726-738. |
| ZHANG S, YU Y, WANG D H, et al., 2020. Forms distribution of heavy metals and their ecological risk evaluation in soils of ion adsorption type in the rare earth mining area of Southern Jiangxi, China[J]. Rock and Mineral Analysis, 39(5): 726-738. | |
| [75] | 郑笑影, 王东丽, 赵晓亮, 等, 2023. 菌剂配施有机肥下植物-土壤-微生物生态化学计量特征及内稳性——以内蒙矿区排土场中药复垦模式为例[J]. 水土保持学报, 37(5): 352-362. |
| ZHENG X Y, WANG D L, ZHAO X L, et al., 2023. Ecostoichiometric characteristics and internal stability of plant-soil-microbial ecosystem under organic fertilizer application with fungicides: An example of traditional Chinese medicine reclamation model in a mining site in inner Mongolia[J]. Journal of Soil and Water Conservation, 37(5): 352-362. | |
| [76] | 中华人民共和国农业农村部, 2006. 土壤检测第6部分:土壤有机质的测定:NY/T1121.6—2006[S]. 北京: 中国标准出版社. |
| Ministry of Agriculture and Rural Affairs of the People's Republic of China, 2006. Soil testing, Part 6: Determination of soil organic matter: NY/T 1121.6—2006[S]. Beijing: China Standards Press. | |
| [77] |
周华, 吴礼树, 洪军, 等, 2006. 几种改良剂对Cd和Pb污染土壤小白菜生长的影响[J]. 河南农业科学 (5): 90-94.
DOI |
| ZHOU H, WU L S, HONG J, et al., 2006. Effects of several modifiers on the growth of non-heading Chinese cabbage in cadmium and lead contaminated soil[J]. Journal of Henan Agricultural Sciences (5): 90-94. | |
| [78] |
周武先, 何银生, 朱盈徽, 等, 2019. 生石灰和钙镁磷肥对酸化川党参土壤的改良效果[J]. 应用生态学报, 30(9): 3224-3232.
DOI |
| ZHOU W X, HE Y S, ZHU Y H, et al., 2019. Improvement effects of quicklime and calcium magnesium phosphate fertilizer on acidified soil cultivating Codonopsis tangshen[J]. Chinese Journal of Applied Ecology, 30(9): 3224-3232. |
| [1] | CHEN Yan, SHI Chenglong, LI Pujun, XIAO Jiang, CHEN Guangcai. Co-hydrothermal Liquid Phase Product of Heavy Metal-containing Trees and Bone Meal: Analysis and Preliminary Evaluation [J]. Ecology and Environmental Sciences, 2025, 34(4): 642-652. |
| [2] | ZHAO Jingshu, LIU Jie, JIANG Xusheng, HUANG Zhangui, YANG Lin. Succession of Rhizosphere Microbial Communities in Cd-Pb-Zn Co-Contaminated Soil Mediated by Celosia argentea L. [J]. Ecology and Environmental Sciences, 2025, 34(10): 1644-1653. |
| [3] | LIU Chutian, GUO Dongdong, HOU Lei, LIANG Qibin, WANG Yanxia, SHI Yanting, QI Yane. Analysis of the Effect Model for Nutrient Regulation on Cadmium Accumulation in Populus yunnanensis Seedlings [J]. Ecology and Environmental Sciences, 2024, 33(3): 460-468. |
| [4] | LI Pujun, TANG Li, ZHAO Bo, DI Dongliu, CHEN Yan, XIAO Jiang, CHEN Guangcai. The Amelioration of Biochar Soil Amendment on Antimony Mining Soil and Growth of Betula luminifera [J]. Ecology and Environmental Sciences, 2024, 33(12): 1953-1963. |
| [5] | LI Zhenguo, HAO Xingyu, HE Tianlian, JING Rui, RONG Cheng, GU Chengzhen, ZHENG Xinyu. Study on the Alleviating Effect of Bamboo Vinegar on Cadmium Toxicity of Perilla frutescens (L.) Britt. [J]. Ecology and Environmental Sciences, 2023, 32(7): 1313-1324. |
| [6] | ZHAO Liangxia, GAO Kun, HUANG Tingting, GAO Ye, JU Tangdan, JIANG Qiuyang, JIN Heng, XIONG Lei, TANG Zailin, GAO Canhong. The Cadmium Accumulation Characteristics of Maize Inbred Lines with High/Low Grain Cadmium Accumulation at Different Growth Stages [J]. Ecology and Environmental Sciences, 2023, 32(4): 766-775. |
| [7] | YANG Yaodong, CHEN Yumei, TU Pengfei, ZENG Qingru. Phytoremediation Potential of Economic Crop Rotation Patterns for Cadmium-polluted Farmland [J]. Ecology and Environmental Sciences, 2023, 32(3): 627-634. |
| [8] | LIU Kanghan, ZHENG Liugen, ZHANG Liqun, DING Dan, SHAN Shifeng. Effect of Complex Plant Derived Activator on the Remediation of As Contaminated Soil by Pteris vittata [J]. Ecology and Environmental Sciences, 2023, 32(3): 635-642. |
| [9] | HAO Liyu, HE Miaomiao, TANG Jiaxi. Research Progress on Pollution Situation and Remediation Technology of Perfluoroalkyl Substances in River Water [J]. Ecology and Environmental Sciences, 2023, 32(12): 2115-2127. |
| [10] | WU De, PENG Ou, LIU Yuling, ZHANG Puxin, YIN Xuefei, HUANG Xinming, TIE Boqing. Effects of Chelating Agents and Thier Combinations on Remediation of Two Cadmium Contaminated Soils by Sedum plumbizincicola [J]. Ecology and Environmental Sciences, 2022, 31(12): 2414-2421. |
| [11] | YU Longsheng, LI Wei, XU Mingyu, LIN Zefan. Effect of Gibberellin Soaking on Seed Germination and Seedling Growth of Two Pioneer Plants for Ecological Restoration in Mining Areas [J]. Ecology and Environmental Sciences, 2022, 31(11): 2225-2233. |
| [12] | CONG Chao, YANG Ningke, WANG Haijuan, WANG Hongbin. Enhancing Arsenic and Cadmium Accumulation in Pteris vittata and Solanum nigrum by Combined Application of Indoleacetic Acid and Kinetin: A Field Experiment [J]. Ecology and Environmental Sciences, 2021, 30(6): 1299-1309. |
| [13] | 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 Environmental Sciences, 2021, 30(12): 2423-2430. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||
Copyright © 2021 Editorial Office of ACTA PETROLEI SINICA
Address:No. 6 Liupukang Street, Xicheng District, Beijing, P.R.China, 510650
Tel: 86-010-62067128, 86-010-62067137, 86-010-62067139
Fax: 86-10-62067130
Email: syxb@cnpc.com.cn
Support byBeijing Magtech Co.ltd, E-mail:support@magtech.com.cn