Citation: | Du Jun, Lu Xianke, Cai Kui, Yan Lina, Luan Wenlou, Song Zefeng, Zhao Zhirui, Luan Zhuoran, Yan Xiulan, Yang Xiao. 2025. Cadmium pollution in soil and plant system and its remediation technology: Status and prospects[J]. Geology in China, 52(1): 131−158. DOI: 10.12029/gc20240320002 |
This paper is the result of agricultural geological survey engineering.
Cadmium pollution in soil has become an important environmental issue concerned both at home and abroad. This paper focuses on the research status and development direction of cadmium pollution in soil and plants and the remediation technology, and tries to provide help for the related theoretical research and production practice.
Based on consulting a large number of literature related to cadmium pollution in soil and plants and the remediation technology, the harm of cadmium, the current situation of cadmium pollution in soil, the influence mechanism of cadmium on plants, the mechanism of migration and transformation of cadmium from soil to the plant system and the remediation technology have been systematically introduced and objectively reviewed.
Soil cadmium pollution in China shows a trend of diversified development, Cadmium pollution has been found in cultivated land, woodland, grassland, in both gardens and unused land, especially in cultivated land. Cadmium has a significant impact on plant growth and development, antioxidant enzyme activity, photosynthesis and respiration. The migration of cadmium from soil to plant systems is mainly in the form of cadmium ions and clathrate, related to the interface process, in virtue of the carrier and channel to achieve. The remediation technology can be divided into chemical and biological categories, mainly includes biochar, mineral materials, organic fertilizers, microorganisms, plants, animals and combined restoration technology.
Cadmium has great harmfulness and the cadmium pollution is still a serious problem for farmland soil in China. The effects on plants and migration and transformation of cadmium in soil plant systems involve multiple mechanisms. Kinds of the remediation technology for cadmium pollution in farmland soil has its own principles and advantages, and the joint remediation technology has a good development prospect. Continuous efforts in theoretical and practical research must be made on cadmium pollution in soil and plants and the remediation technology, to build an effective cadmium pollution prevention and control technology system to ensure the safe production of food.
[1] |
Alexander J A, Ahmad Zaini M A, Surajudeen A, Aliyu E N U, Omeiza A U. 2019. Surface modification of low–cost bentonite adsorbents–A review[J]. Particulate Science and Technology, 37(5): 538−549. doi: 10.1080/02726351.2018.1438548
|
[2] |
Anderson J M, Park Y I, Chow W S. 1997. Photoinaction and photoprotection of photosystem Ⅱ in nature[J]. Physiologia Plantarum, 100(2): 214−223. doi: 10.1111/j.1399-3054.1997.tb04777.x
|
[3] |
An Tingting, Huang Di, Wang Hao, Zhang Yi, Chen Yinglong. 2021. Research advances in plant physiological and biochemical mechanisms in response to cadmium stress[J]. Chinese Bulletin of Botany, 56(3): 347−362 (in Chinese with English abstract).
|
[4] |
Arthur E, Crews H, Morgan C. 2000. Optimizing plant genetic strategies for minimizing environmental contamination in the food chain: Report[J]. International Journal of Phytoremediation, 2(1): 1−21. doi: 10.1080/15226510008500027
|
[5] |
Assche F V, Clijster H. 1990. Effects of metal on enzyme activity in plants[J]. Plant Cell Environment, 13: 195−206. doi: 10.1111/j.1365-3040.1990.tb01304.x
|
[6] |
Bae W, Mehra R K, Mulchandani A, Chen W. 2001. Genetic engineering of Escherichia coli for enhanced uptake and bioaccumulation of mercury[J]. Applied and Environmental Microbiology, 67(11): 5335−5338. doi: 10.1128/AEM.67.11.5335-5338.2001
|
[7] |
Bezel V S, Zhuikova T V, Pozolotina V N. 1998. The structure of dandelion cenopopulations and specific features of heavy metal accumulation[J]. Russian Journal of Ecology, 29(5): 331−337.
|
[8] |
Cao Ruiqin, Yang Zhongfang, Yu Tao. 2024. Research progress of stable isotopic geochemistry of cadmium and zinc and its harm and control in soil and other geological bodies[J]. Geology in China, 51(3): 833−864 (in Chinese with English abstract).
|
[9] |
Cardoso S L, Costa C S D, Nishikawa E, Silva M G C, Vieira M G A. 2017. Biosorption of toxic metals using the alginate extraction residue from the brown algae Sargassum filipendula as a natural ion–exchanger[J]. Journal of Cleaner Production, 165: 491−499. doi: 10.1016/j.jclepro.2017.07.114
|
[10] |
Chang Haiwei, Liu Daihuan, He Qianfeng. 2018. Advances in microbial redemption mechanism of heavy metal polluted farmland[J]. Journal of Microbiology, 38(2): 120−127 (in Chinese with English abstract).
|
[11] |
Chen Baodong, Yu Meng, Hao Zhipeng, Xie Wei, Zhang Shen. 2019. Research progress in arbuscular mycorrhizal technology[J]. Chinese Journal of Applied Ecology, 30(3): 1035−1046 (in Chinese with English abstract).
|
[12] |
Chen Dun, Wang Xiaobing, Wang Xiaoli, Feng Ke, Zhang Xumei. 2020. Screening of passivators for cadmium–contaminated red soil and their effects on soil remediation[J]. Journal of Ecology and Rural Environment, 36(1): 115−120 (in Chinese with English abstract).
|
[13] |
Chen G, Du R, Wang X. 2023. Genetic regulation mechanism of cadmium accumulation and its utilization in rice breeding[J]. International Journal of Molecular Sciences, 24(1247): 1−18.
|
[14] |
Chen Hong, Xu Qiuman, Wang Wei. 2000. The effect of Cd2+ on the activity of protectiase and cell membrance lipid peroxidation change of wheat seedlings[J]. Acta Botanica Boreali–Occidentalia Sinica, 20(3): 399−403 (in Chinese with English abstract).
|
[15] |
Chen Lili, Lu Weidan, Li Junhua, Luo Tong, Sun Benben. 2022. Response of growth and enrichment characteristics of three plants under different concentrations of cadmium pollution[J]. Journal of Shihezi University (Natural Science), 40(2): 172−179 (in Chinese with English abstract).
|
[16] |
Chen Minni, Nie Xiaoqi, Zhang Xingfeng, He Chuanqian, Gao Bo. 2023. Effects of earthworm, straw, and citric acid on the remediation of Zn, Pb, and Cd contaminated soil by solanum photeinocarpum and pterocypsela indica[J]. Environmental Science, 44(3): 1714−1726 (in Chinese with English abstract).
|
[17] |
Chen Yuan. 2007. Development of study on cadmium and its chemical speciation in soil[J]. Guangdong Trace Elements Science, 14(7): 7−13 (in Chinese with English abstract).
|
[18] |
Chen Zexiong, Zhu Huangrong, Zhou Zhijun, Zhao Qiuxiang. 2019. Effects of functionalized montmorillonite on rhizospheric enzyme activities in Cd contaminated soil[J]. Journal of Agricultural Resources and Environment, 36(4): 528−533 (in Chinese with English abstract).
|
[19] |
Cheng Zhilong, Wang Xiangxiang, Zhang Tiantian, Yang Ying, Zhou Yutong, Wu Liang, Zhang Feixiang. 2023. Effect of different amendments on Cd migration and accumulation in the soil–rice system[J]. Environmental Science and Technology, 46(2): 24−31 (in Chinese with English abstract).
|
[20] |
Ci Dunwei, Jiang Dong, Dai Tingbo. 2005. Effect of Cd toxicity on photosynthesis and chlorophyll fluorescence of wheat seedling[J]. Journal of Triticeae Crops, 25(5): 88−91 (in Chinese with English abstract).
|
[21] |
Clemens S, Aarts M G M, Thomine S, Verbruggen N. 2013. Plant science: The key to preventing slow cadmium poisoning[J]. Trends in Plant Science, 18(2): 92−99. doi: 10.1016/j.tplants.2012.08.003
|
[22] |
Cuadros J. 2017. Clay minerals interaction with microorganisms: A review[J]. Clay Minerals, 52(2): 235−261. doi: 10.1180/claymin.2017.052.2.05
|
[23] |
Cui Junyi, Ma Youhua, Wang Chensisi, Chen Liangmei, Wu Linchun, Hu Hongxiang. 2017. Farmland soil cadmium pollution of in situ passivation remediation technology[J]. Chinese Agricultural Science Bulletin, 33(30): 79−83 (in Chinese with English abstract).
|
[24] |
Ding Shufang, Xie Zhengmiao, Wu Weihong, Zhou Rongbing, Chen Jianjun. 2012. Research progress on chemical remediation of heavy metal–contaminated soils using phosphorous–containing materials[J]. Journal of Anhui Agricultural Sciences, 40(35): 17093−17097 (in Chinese with English abstract).
|
[25] |
Dong G, Nkoh J A, Hong Z N, Dong Y, Lu H L, Yang J, Pan X Y, Xu R K. 2020. Phytotoxicity of Cu2+ and Cd2+ to the roots of four different wheat cultivars as related to charge properties and chemical forms of the metals on whole plant roots[J]. Ecotoxicology Environmental Safety, 196: 1−9.
|
[26] |
Dong Likuan, Fang Bin. 2017. Analysis of spatial heterogeneity of soil heavy metals in tea plantation: Case study of high quality tea garden in Jiangsu and Zhejiang[J]. Geographical Research, 36(2): 391−404 (in Chinese with English abstract).
|
[27] |
Dong Meng, Zhao Yunlin, Ku Wenzhen, Tuo Ruirui, Dai Meibin, Yi Hecheng. 2011. Cadmium enrichment characteristics of eight dominant plant species in Dongting Lake wetland[J]. Chinese Journal of Ecology, 30(12): 2783−2789 (in Chinese with English abstract).
|
[28] |
EI Aafi N, Brhada F, Dary M, Maltouf A F, Pajuelo E. 2012. Rhizo stabilization of metals in soils using Lupinus luteus inoculated with the metal resistant rhizobacterium Serratia sp. MSMC541[J]. International Journal of Phytoremediation, 14(3): 261−274. doi: 10.1080/15226514.2011.604693
|
[29] |
Fan Zhanhuang, Zhang Zhenqian. 2021. Brassica Napus L. in the remediation of cadmium contaminated soil[J]. Chinese Agricultural Science Bulletin, 37(30): 72−76 (in Chinese with English abstract).
|
[30] |
Feng Fengling, Cheng Jiemin, Wang Dexia. 2006. Potential application of earthworm for the phytoremediation of soils contaminated by heavy metals[J]. Chinese Journal of Soil Science, 37(4): 809−814 (in Chinese with English abstract).
|
[31] |
Gao Y, Miao C, Mao L, Zhou P, Jin Z G, Shi W J. 2010. Improvement of phytoextraction and antioxidative defense in Solanum nigrum L. under cadmium stress by application of cadmium–resistant strain and citric acid[J]. Journal of Hazardous Materials, 181: 771−777. doi: 10.1016/j.jhazmat.2010.05.080
|
[32] |
Gu Minghua, Li Zhiming, Chen Hong, Lei Jung, Fang Yuan, Tang Cuirong, Shen Fangke. 2020. Effects of manganese application on the formation of manganese oxides and cadmium fixation in soil[J]. Ecology and Environmental Sciences, 29(2): 360−368 (in Chinese with English abstract).
|
[33] |
Gu X, Evans L J. 2008. Surface complexation modelling of Cd(II), Cu(II), Ni(II), Pb(II) and Zn(II) adsorption onto kaolinite[J]. Geochimica et Cosmochimica Acta, 72(2): 267−276. doi: 10.1016/j.gca.2007.09.032
|
[34] |
Gu Y, Wang P, Zhang S, Dai J, Chen H P, Lombi E, Howard D L, Ent A V D, Zhao F J, Kopittke P M. 2020. Chemical speciation and distribution of cadmium in rice grain and implications for bioavailability to humans[J]. Environmental Science & Technology, 54(19): 12072−12080.
|
[35] |
Guo Bingyue, Yang Kunpeng, Zhang Jing, Dai Juncheng, Cheng Zhiyan, Zhang Yaping. 2023. Research on the remediation effect of manganese dioxide/amino–modified biochar on Pb and Cd composite contaminated soil[J]. Journal of Ecology and Rural Environment, 39(3): 422−428 (in Chinese with English abstract).
|
[36] |
Haider U F. 2021. Co–application of Biochar and Microbes (Trichoderma Harzianum L. and Bacillus Subtilis L. ) Improves the Productivity of Cereal–legume Cropping System and Remediate Cadmium–contaminated Soil[D]. Lanzhou: Gansu Agricultural University, 1–153 (in English with Chinese abstract).
|
[37] |
Han Juan, Zhao Jinli, He Xueli. 2016. Characteristics of heavy metals enrichment in plant species growing in Baiyangdian[J]. Journal of Agricultural University of Hebei, 39(4): 31−36 (in Chinese with English abstract).
|
[38] |
He Junyu, Ren Yanfang, Ren Jianming, Chang Huiqing, Wang Yangyang. 2009. Effects of cadmium on seed germination of different wheat varieties[J]. Chinese Agricultural Science Bulletin, 25(10): 235−240 (in Chinese with English abstract).
|
[39] |
Hong Renyuan, Yang Guangxiao, Liu Donghua, Pu Changguang. 1991. Effects of cadmium on the growth and physiological and biochemical reactions of wheat seedlings[J]. Acta Agriculture Boreali–Sinica, 49(15): 148−149 (in Chinese with English abstract).
|
[40] |
Hou Xiu, Wang Zuwei. 2009. Influence of Fe–Mn oxides in contaminated soil on bio–availability and effective form of Cd[J]. Journal of Agro–Environment Science, 28(11): 2313−2317 (in Chinese with English abstract).
|
[41] |
Hu Qingyun, Tang Yougen, Zhang Zhiqiang, Luo yin, Zhang Xiaoyi, Xiao Huan, Ao Hejun. 2021. Effects of 4 types of remediation agents on reducing Cd contents in soil and rice on Cd–contaminated farmland[J]. Hunan Agricultural Sciences, (3): 51−54 (in Chinese with English abstract).
|
[42] |
Huang Dongfen. 2008. Responses of Rice to Cadmium in Soil and Their Regulations[D]. Yangzhou: Yangzhou University, 1–136 (in Chinese with English abstract).
|
[43] |
Huang F, Dang Z, Guo C L, Lu G N, Gu R R, Liu H J, Zhang H. 2013. Biosorption of Cd (Ⅱ) by live and dead cells of Bacillus cereus RC–1 isolated from cadmium– contaminated soil[J]. Colloids and surfaces B: Biointerfaces, 107: 11−18. doi: 10.1016/j.colsurfb.2013.01.062
|
[44] |
Huang H, Shi L, Chen R, Yuan J. 2023. Effect of modified illite on Cd immobilization and fertility enhancement of acidic soils[J]. Sustainability, 15(6): 1−20.
|
[45] |
Huang Keyi, Liu Yu, Ren Wenjing, He Xin, Zhang Zhen, Huang Yunpei, Jiang Xiaoting, Huang Gaoxiang. 2023. Effects of two different paddy soils on Cd uptake and dynamic accumulation characteristics of rice[J]. Chinese Journal of Soil Science, 54(2): 432−440 (in Chinese with English abstract).
|
[46] |
Huang Qing, Liu Borui, Cai Huajie, Bao Liying. 2014. Effect of freeze–thaw cycles and organic fertilizer on the speciation of cadmium in black soils[J]. Environmental Pollution and Control, 36(12): 38−42 (in Chinese with English abstract).
|
[47] |
Huang Wei, Zhuang Ronghao, Liu Hui, Wang Zhiguo, Zhang Chun, Yu Peng. 2022. Recent advances of the current situation and remediation methods of Cadmium contamination in paddy soil[J]. Journal of Natural Science of Hunan Normal University, 45(1): 49−56 (in Chinese with English abstract).
|
[48] |
Huang Yushan, Luo Guanghua, Guan Qiwen. 1997. Peroxidation damage of oxygen free radicals induced by cadmium to plant[J]. Acta Botanica Sinica, 39(6): 522–526 (in English).
|
[49] |
Jeong S, Moon H S, Nam K, Kim J Y, Kim T S . 2012. Application of phosphate–solubilizing bacteria for enhancing bioavailability and phytoextraction of cadmium (Cd) from polluted soil[J]. Chemosphere, 88(2): 204−210. doi: 10.1016/j.chemosphere.2012.03.013
|
[50] |
Jia Xia, Zhou Chunjuan, Dong Suiming. 2011. Progress of research on the effects of Cd2+ stress on wheat and the response of wheat to Cd2+[J]. Journal of Triticeae Crops, 31(4): 786−792 (in Chinese with English abstract).
|
[51] |
Jian Minfei, Yang Yeping, Yu Houping, Gong Qiulin, Chen Yongling. 2015. Influences of different cadmium concentration stress on chlorophyll and its photosynthetic fluorescence characteristics of ramie (boehmeria nivea)[J]. Plant Physiology Journal, 51(8): 1331−1338 (in Chinese with English abstract).
|
[52] |
Jiang Chunxiao. 2009. Breeding of Cadmium–tolerant Strain and Its Application in Remediation of Cadmiun–contaminated Soils with Bioaugmentation[D]. Tianjing: Nankai University, 1–162 (in Chinese with English abstract).
|
[53] |
Jiang Jing, Deng Jingling, Sheng Guangyao. 2022. A review of biochar aging and its impact on the adsorption of heavy metals[J]. Ecology and Environmental Sciences, 31(10): 2089−2100 (in Chinese with English abstract).
|
[54] |
Joseph P. 2009. Mechanisms of cadmium carcinogenesis[J]. Toxicology and Applied Pharmacology, 238(3): 272−279. doi: 10.1016/j.taap.2009.01.011
|
[55] |
Khan I, Awan S A, Rizwan M, Ali S, Hassan M J, Brestic M, Zhang X Q, Huang LK. 2021. Effects of silicon on heavy metal uptake at the soil–plant interphase: A review[J]. Ecotoxicology and Environmental Safety, 222: 1−15.
|
[56] |
Khadivinia E, Sharafi H, Hadi F, Zahiri H S, Modiri S, Tohidi A, Mousavi A, Salmanian A H, Noghabi K A. 2014. Cadmium biosorption by a glyphosate–degrading bacterium, a novel biosorbent isolated from pesticide–contaminated agricultural soils[J]. Journal of Industrial and Engineering Chemistry, 20(6): 4304−4310. doi: 10.1016/j.jiec.2014.01.037
|
[57] |
Komárek M, Antelo J, Králová M, Veselská V, Číhalová S, Chrastný V, Ettler V, Filip J, Yu Q, Fein JB, Koretsky C M. 2018. Revisiting models of Cd, Cu, Pb and Zn adsorption onto Fe (III) oxides[J]. Chemical Geology, 493: 189−198. doi: 10.1016/j.chemgeo.2018.05.036
|
[58] |
Kong Xiangzhen, He Wei, Qin Ning, He Jishuang, Wang Yan, Ou Yanghuiling, Xu Fuliu. 2011. Assessing acute ecological risks of heavy metals to freshwater organisms by species sensitivity distributions[J]. China Environmental Science, 31(9): 1555−1562 (in Chinese with English abstract).
|
[59] |
Krupa P, Kozdrój J. 2007. Ectomycorrhizal fungi and associated bacteria provide protection against heavy metals in inoculated pine (Pinus sylvestris L.) seedlings[J]. Water, Air, and Soil Pollution, 182(1): 83–90.
|
[60] |
Li Cheng, Li Fangbai, Wu Zhifeng, Cheng Jiong. 2015. Impacts of landscape patterns on heavy metal contamination of agricultural top soils in the Pearl River Delta, South China[J]. Chinese Journal of Applied Ecology, 26(4): 1137−1144 (in Chinese with English abstract).
|
[61] |
Li Fei, Li Shupeng, Liu Yuanwen, Guo Lili, Liu Ying, Yang Lewei. 2022. Soil bioremediation technologies: Bibliometric analysis, research status and progress[J]. Chinese Journal of Soil Science, 53(5): 1237−1247 (in Chinese with English abstract).
|
[62] |
Li Hong, Jiang Lan. 2009. The Advances on Microorganism Remediation of Soil Polluted by Heavy Metals[J]. Guizhou Agricultural Sciences, 37(7): 72−74 (in Chinese with English abstract).
|
[63] |
Li Jianrui, Xu Yingming. 2022. Study on remediation of cadmium contaminated vegetable soil by vermiculite in Suburban Area[J]. Journal of Anhui Agricultural Sciences, 50(15): 59−62, 65 (in Chinese with English abstract).
|
[64] |
Li Jing, Zhou Yanwen, Chen Sen, Gao Xiaojie. 2015. Actualities, damage and management of soil cadmium pollution in China[J]. Anhui Agricultural Science Bulletin, 21(24): 104−107 (in Chinese with English abstract).
|
[65] |
Li Ruimei, Wang Guo, Fang Ling. 2002. Effects of complexation of calcium, magnesium, phosphate with organic manure on Cd, Pb uptake by crop[J]. Soil and Environmental Sciences, 11(4): 348−351. (in Chinese with English abstract).
|
[66] |
Li Xiaohui, Ai Xianbin, Li Liang, Wang Xiyang, Xin Zaijun, Sun Xiaoyan, 2022. Study on passivation effect of new modified rice husk biochar materials on cadmium contaminated soil [J]. Ecology and Environmental Sciences, 31(9): 1901–1908. (in Chinese with English abstract).
|
[67] |
Li G Y, Yan L J, Chen X M, Shiung L S, Jorg R, Qing Y, Yang Y F, Peng W X, Christian S. 2023a. Phytoremediation of cadmium from soil, air and water[J]. Chemosphere, 320: 138058. doi: 10.1016/j.chemosphere.2023.138058
|
[68] |
Li Y L, Rahman S U, Qiu Z X, Muhammad S S, Farrakh N M, Huang J Z, Sadiq N, Li L, Wang X J, Cheng H F. 2023b. Toxic effects of cadmium on the physiological and biochemical attributes of plants, and phytoremediation strategies: A review[J]. Environmental Pollution, 325: 121433. doi: 10.1016/j.envpol.2023.121433
|
[69] |
Liang X F, Han J, Xu Y M, Sun Y B, Wang L, Tan X. 2014a. In situ field–scale remediation of Cd polluted paddy soil using sepiolite and palygorskite[J]. Geoderma, 235–236: 9–18.
|
[70] |
Liang X, Chi–Quan H, Gang N, Tang G E, Chen X P, Lei Y R. 2014b. Growth and Cd accumulation of orychophragmus violaceus as affected by inoculation of Cd–tolerant bacterial strains[J]. Pedosphere, 24(3): 322−329. doi: 10.1016/S1002-0160(14)60018-7
|
[71] |
Limcharoensuk T, Sooksawat N, Sumarnrote A, Awutpet T, Kruatrachue M, Pokethitiyook P, Auesukaree C. 2015. Bioaccumulation and biosorption of Cd2+ and Zn2+ by bacteria isolated from a zinc mine in Thailand[J]. Ecotoxicology and Environmental Safety, 122: 322−330. doi: 10.1016/j.ecoenv.2015.08.013
|
[72] |
Liu Hongmei, Yang Kai, Xiao Zhengwu. 2018. Research progress of soil cadmium pollution control and exogenous regulation[J]. Crop Research, 32(5): 449−453 (in Chinese with English abstract).
|
[73] |
Liu Rui, Luo Xuan, Li Song, Zhang Hui, Liu Xing. 2020. Biochar aging in soils and its influence on adsorption of heavy metals: A review[J]. The Administration Technique of Environmental Monitoring, 32(5): 1−5 (in Chinese with English abstract).
|
[74] |
Liu Shiliang, Yang Rongjie, Ma Mingdong, Jiang Pan, Zhao Yan. 2015. Effects of soil cadmium on growth and physiological characteristics of solanum nigrum L. plants[J]. Journal of Agro–Environment Science, 34(2): 240−247 (in Chinese with English abstract).
|
[75] |
Liu Wei, Gao Yunbing, Zhou Yanbing, Pan Yuchun, Dai Yanghua, Gao Bingbo, Yan Yueguan. 2019. Multi scale analysis of spatial variability of heavy metals in farmland soils: Case study of soil Cd in Shunyi District of Beijing, China[J]. Journal of Agro−Environment Science, 38(1): 87−94 (in Chinese with English abstract).
|
[76] |
Liu Wensheng, Zhou Chan, Guo Panjiang, Li Shiyou, Yu Yang. 2010. Influence of heavy metal cadmium on maize seed germination and growth of embryo[J]. Hubei Agricultural Sciences, 49(4): 842−844 (in Chinese with English abstract).
|
[77] |
Liu X L, Zhang S Z, Shan X Q, Christie P. 2007. Combined toxicity of cadmium and arsenate to wheat seedlings and plant uptake and anti–oxidative enzyme responses to cadmium and arsenate co–contamination[J]. Ecotoxicology and Environmental Safety, 68(2): 305−313. doi: 10.1016/j.ecoenv.2006.11.001
|
[78] |
Liu Yizhang, Xiao Tangfu, Xiong Yan, Ning Zengping, Shuang Yan, Li Hang, Ma Liang, Chen Haiyan. 2019. Accumulation of heavy metals in agricultural soils and crops from an area with a high geochemical background of cadmium, southwestern China[J]. Environmental Science, 40(6): 2877−2884 (in Chinese with English abstract).
|
[79] |
Liu Yuechang, Li Baozhen, Wang Tao, Wang Lan. 2020. Study of two microbes combined to remediate fields soil cadmium pollution[J]. Journal of Soil and Water Conservation, 34(4): 364−369 (in Chinese with English abstract).
|
[80] |
Liu Z D, Zhou Q, Hong ZN, Xu R K. 2017. Effects of surface charge and functional groups on the adsorption and binding forms of Cu and Cd on roots of indica and japonica rice cultivars[J]. Frontiers in Plant Science, 8: 1−9.
|
[81] |
Liu Zhaobing, Ji Xionghui, Peng Hua, Shi Lihong, Li Hongshun. 2010. Effects and action mechanisms of different water management modes on rice Cd absorption and accumulation[J]. Chinese Journal of Applied Ecology, 21(4): 908−914 (in Chinese with English abstract).
|
[82] |
Loganathan P, Vigneswaran S, Kandasamy J, Naidu R. 2012. Cadmium sorption and desorption in soils: A review[J]. Critical Reviews in Environmental Science and Technology, 42(5): 489−533. doi: 10.1080/10643389.2010.520234
|
[83] |
Lu Deliang, Qiao Lu, Chen Lixin, Hu Bin, Zhou Jianping, Wang Zhanchao, Wang Yan. 2012. Soil pollution characteristics by heavy metals and the plant enrichment in green space of urban areas of Harbin[J]. Scientia Silvae Sinicae, 48(8): 16−24 (in Chinese with English abstract).
|
[84] |
Lu Hongjuan, Zhou Delin, Ye Wenling, Fan Ting, Ma Youhua. 2019. Advances in application of bio–organic fertilizer in soil improvement and remediation of heavy metals pollution[J]. Environmental Pollution and Prevention and Control, 41(11): 1378−1383 (in Chinese with English abstract).
|
[85] |
Lu Weihong, Liu Juan, Zhang Naiming, Zhang Yujuan, Hao Kangwei, Ren Lijuan, Yu Chang, Hou Hong. 2022. Study on the accumulation of heavy metals and influencing factors in the soil of facility vegetable fields[J]. China Environmental Science, 42(6): 2744−2753 (in Chinese with English abstract).
|
[86] |
Luo Yongming, Teng Ying. 2018. Regional difference in soil pollution and strategy of soil zonal governance and remediation in China[J]. Journal of the Chinese Academy of Sciences, 33(2): 145−152 (in Chinese with English abstract).
|
[87] |
Lux A, Martinka M, Vaculik M, White P J. 2011. Root responses to cadmium in the rhizosphere: a review[J]. Journal of Experimental Botany, 62(1): 21−37. doi: 10.1093/jxb/erq281
|
[88] |
Ma Jiaoyang, Bao Xinchen, Wang Kun, Wang Chengchen, Cui Daolei, Zhang Mengyan, Xiang Ping. 2021. Human health risk assessment of cadmium in soils: Role of bioavailability and toxic effects[J]. Asian Journal of Ecotoxicology, 16(6): 120−132 (in Chinese with English abstract).
|
[89] |
Ma Lijuan, Shao Yun, Li Chunxi, Jiang Lina. 2007. Effects of Cd2+ stress on growth and respiration of wheat seedling[J]. Acta Botanica Boreali−Occidentalia Sinica, 27(6): 1185−1190 (in Chinese with English abstract).
|
[90] |
Ma Yu, Li Tuanjie, Wang Di, Peng Yanchao, Cai Yucan, Wang Aijun. 2011. Pollution and potential ecological risk of heavy metals in sediment of coastal wetland of the Pearl River Estuary[J]. Tropical Geography, 31(4): 353−356 (in Chinese with English abstract).
|
[91] |
Mostafaii G R, Aseman E, Asgharnia H, Akbari H, Iranshahi L, Sayyaf H. 2016. Efficiency of the earthworm Eisenia fetida under the effect of organic matter for bioremediation of soils contaminated with cadmium and chromium[J]. Brazilian Journal of Chemical Engineering, 33: 827−834. doi: 10.1590/0104-6632.20160334s20150230
|
[92] |
Mu Tingting, Zhou Tong, Xu Jian, Gan Xinhong. 2022. Accumulation of cadmium and major controlling factors in soil–wheat system[J]. Soil, 54(3): 556−563 (in Chinese with English abstract).
|
[93] |
Niu Guoliang. 2022. Adsorption Characteristics of Cadmium by Organically Modified Clay Minerals and Its Immobilization Effect on Cadmium Contaminated Soil[D]. Tai'an: Shandong Agricultural University, 1–75 (in Chinese with English abstract).
|
[94] |
Prapagdee B, Chumphonwong N, Khonsue N, Mongkolsuk S. 2012. Influence of cadmium resistant bacteria on promoting plant root elongation and increasing cadmium mobilization in contaminated soil[J]. Fresenius Environmental Bulletin, 21(5): 1186−1191.
|
[95] |
Qi X, Tam N F Y, Li W. C, Ye Z H. 2020. The role of root apoplastic barriers in cadmium translocation and accumulation in cultivars of rice (Oryza sativa L.) with different Cd–accumulating characteristics[J]. Environmental Pollution, 264: 1−11.
|
[96] |
Qin Ran, Lou Fei, Dai Liangyu, Wang Hu, Zhou Kai, He Shouyang, He Tenbing, Fu Tianling. 2021. Screening of low–bioaccumulation rice varieties in cadmium contaminated paddy fields with high geological background[J]. Journal of Southern Agriculture, 52(10): 2709−2716 (in Chinese with English abstract).
|
[97] |
Qin S Y, Liu H G, Nie Z J, Rengel Z, Gao W, Li C, Zhao P. 2020. Toxicity of cadmium and its competition with mineral nutrients for uptake by plants: A review[J]. Pedosphere, 30(2): 168−180. doi: 10.1016/S1002-0160(20)60002-9
|
[98] |
Qin Tiancai, Wu Yushu, Huang Qiaoyun, Hu Hongqing. 1997. Effects of cadmium lead single and combination pollution on the contents of ascorbic acid in Brassica chinensis L[J]. Chinese Journal of Ecology, 16(3): 31−34 (in Chinese with English abstract).
|
[99] |
Ren Jikai, Chen Qinglang, Chen Lingzhi, Han Rongzhuang, Yao Yiqun, Kong Fanzhi, Miao Yougui. 1982. The soil contaminated by cadmium and crop[J]. Acta Phytoecologica et Geobotanica Sinica, 6(2): 131−141 (in Chinese with English abstract).
|
[100] |
Ren Jinghua, Fan Jian, Sun Yu, Liao Qilin, Xu Weiwei, Liu Ling, Han Chao, Gu Xueyuan. 2023. Refined imaging of pH and O2 across the passivated soil–root micro–interfaces[J]. China Environmental Science, 43(4): 1782−1790 (in Chinese with English abstract).
|
[101] |
Ren Lingwei. 2017. The Remediation of Heavy Metal Contaminated Farmland Soils by Typical Mineral Materials[D]. Hangzhou: Zhejiang University, 1–80 (in Chinese with English abstract).
|
[102] |
Ren Z L, Sivry Y, Dai J, Tharaud M, Cordier L, Benedetti M F. 2015. Multi–element stable isotopic dilution and multi–surface modelling to assess the speciation and reactivity of cadmium and copper in soil[J]. European Journal of Soil Science, 66(6): 973−982. doi: 10.1111/ejss.12298
|
[103] |
Riaz M, Kamran M, Fang Y, Wang Q, Cao H, Yang G, Wang X. 2021. Arbuscular mycorrhizal fungi–induced mitigation of heavy metal phytotoxicity in metal contaminated soils: A critical review[J]. Journal of Hazardous Materials, 402: 123919. doi: 10.1016/j.jhazmat.2020.123919
|
[104] |
Rong Xingmin, Huang Qiaoyun, Chen Wenli, Liang Wei. 2008. Interaction mechanisms of soil minerals with microorganisms and their environmental significance[J]. Acta Ecologica Sinica, 28(1): 376−387 (in Chinese with English abstract).
|
[105] |
Salah S A, Barrington S F. 2006. Effect of soil fertility and transpiration rate on young wheat plants (Triticum aestivum) Cd/Zn uptake and yield[J]. Agricultural Water Management, 82: 177−192. doi: 10.1016/j.agwat.2005.06.002
|
[106] |
Seregin I V, Shpigun L K, Ivanov V B. 2004. Distribution and toxic effects of cadmium and lead on maize roots[J]. Russian Journal of Plant Physiology, 51: 525−533. doi: 10.1023/B:RUPP.0000035747.42399.84
|
[107] |
Shan Hong. 2009. Impact and Mechanism of Organic Amendments on Cadmium Bioavailability in Soils [D]. Beijing: Chinese Academy of Agricultural Sciences, 1–103 (in Chinese with English abstract).
|
[108] |
Shao Yun, Feng Shuli, Li Chunxi, Jiang Lina, Hou Xiaoli, Lu Xuyang. 2006. Effects of Stress of Cd2+ on physiological activity of wheat seedling[J]. Journal of Anhui Agricultural Sciences, 34(5): 836−838 (in Chinese with English abstract).
|
[109] |
Shen Yichen, Tu Chen, Qiu Wei, Zhu Xia, Fan Wanyi, Cao Zhenyu, Zhu Xiaofang, Luo Yongming. 2023. Cadmium accumulation and pollution reduction potential of different rice varieties on cadmium–contaminated soils[J]. Journal of Ecology and Rural Environment, 39(4): 547−555 (in Chinese with English abstract).
|
[110] |
Shen Jianxiu. 2017. Response of Robinia Pseudoacacla to cadmium stress after inoculation with rhizobium[D]. Xi’an: Northwest A&F University of Science and Technology, 1–63 (in Chinese with English abstract).
|
[111] |
Shi Nongnong, Chen Zhiwei. 1999. Effects of cadmium (Cd) stress on the sprouting of rice and its hydrolase activities[J]. Agro–environmental Protection, 18(5): 213−216 (in Chinese with English abstract).
|
[112] |
Shi Qiongbin. 2016. Effects of Organic Materials on the Particulate Organic Matter and Pytoavailability of Cadmium within Purple Paddy Soil [D]. Chongqing: Southwest University, 1–56 (in Chinese with English abstract).
|
[113] |
Shi Yangyang. 2020. Effects of Biochar Combined with Cd–tolerant Bacteria on Remediation of Cd–contaminated Soil and Safe Production of Cabbage[D]. Ya’an: Sichuan Agricultural University, 1–69 (in Chinese with English abstract).
|
[114] |
Sima Xiaofeng, Meng Yu, Wu Dongbiao, Yu Peng, Shen Xiancheng, Li Kun. 2021. Study on combined remediation of cadmium contaminated soil by biochar–hyperaccumulators[J]. Journal of Anhui Agricultural Sciences, 49(6): 80−84 (in Chinese with English abstract).
|
[115] |
Siripornadulsil S, Siripornadulsil W. 2013. Cadmium–tolerant bacteria reduce the uptake of cadmium in rice: Potential for microbial bioremediation[J]. Ecotoxicology and Environmental Safety, 94: 94−103. doi: 10.1016/j.ecoenv.2013.05.002
|
[116] |
Song Xiaowang. 2020. Adsorption/Passivation of Cadmium by Fe–Mn Oxide–biochar [D]. Gaungzhou: Guangdong University of Technology, 1–74 (in Chinese with English abstract).
|
[117] |
Song Yuting, Lei Ningfei. 2018. China's cadmium pollution land status and restoration measures[J]. Journal of Xichang University (Natural Science Edition), 32(3): 79−83 (in Chinese with English abstract).
|
[118] |
Sterckeman T, Thomine S. 2020. Mechanisms of cadmium accumulation in plants. critical reviews in plant[J]. Sciences, 39(4): 322–359.
|
[119] |
Su Dechun, Huang Huanzhong. 2002. The phytoremediation potential of oilseed rape (B. juncea) as a hyperaccumulator for cadmium contaminated soil[J]. China Environmental Science, 22(1): 48−51 (in Chinese with English abstract).
|
[120] |
Su Ping. 2009. An exploration into the sulphide precipitation method and its effect on metal sulphide removal[J]. China Nonferrous Metallurgy, (4): 6−10 (in Chinese with English abstract).
|
[121] |
Sun Jingwei, Hu Gongren, Yu Ruilian, Cui Jianyong, Yan Yan, Zhang Yunfeng. 2020. Bioavailability of heavy metals in soil–tea plant system of Tieguanyin tea garden[J]. Environmental Chemistry, 39(10): 2765−2776 (in Chinese with English abstract).
|
[122] |
Sun Y B Li Y, Xu Y M, Liang X F, Wang L. 2015. In situ stabilization remediation of cadmium (Cd) and lead (Pb) co–contaminated paddy soil using bentonite[J]. Applied Clay Science, 105–106: 200–206.
|
[123] |
Tang Yetao, Qiu Rongliang, Zeng Xiaowen, Fang Xiaohang. 2005. A new found Pb/Zn/Cd hyperaccumulator–arabis Paniculata L.[J]. Acta Scientiarum Naturalium Universitatis Sunyatseni, 44(4): 135−136 (in Chinese).
|
[124] |
Tang Fei, Lei Ming, Tang Zhen, Yang Renbin, Song Zhengguo, Tang Shirong, Peng Sha, Liao Haiyu. 2013. Accumulation characteristic and dynamic distribution of Cd in different genotypes of rice (Oryza sativa L.)[J]. Journal of Agro–Environmental Science, 32(6): 1092−1098 (in Chinese with English abstract).
|
[125] |
Tang Jieming, Yao Aijun, Liang Yeheng. 2012. Heavy metals pollution in the soil of Guangzhou Wanmu Orchard: Investigation and assessment[J]. Journal of Subtropical Resources and Environment, 7(2): 27−35 (in Chinese with English abstract).
|
[126] |
Tian Weili, Liu Dan, Wu Jiasen, Wang Lijiang, Chen Kunbai. 2013. Application of animal and plant combination remediation technology in complex heavy metals contaminated soil[J]. Journal of Soil and Water Conservation, 27(5): 188−192 (in Chinese with English abstract).
|
[127] |
Tian Wengang, Yao Jiabin, Jiang Shang, Liu Yong. 2020. Research progress of bioremediation technology in the treatment of heavy metal contaminated soil[J]. Environment and Development, 32(12): 34−35 (in Chinese with English abstract).
|
[128] |
Tian Wen, Zong Dapeng, Fang Chenggang, Wang Chengchen, Wang Jianmin, Xiang Ping. 2022. Health risk and toxic effect of heavy metals in soils from typical vegetable planting areas in southwest China[J]. China Environmental Science, 42(10): 4901−4908 (in Chinese with English abstract).
|
[129] |
Tsekova K, Todorova D, Dencheva V, Ganeva S. 2010. Biosorption of copper (Ⅱ) and cadmium (Ⅱ) from aqueous solutions by free and immobilized biomass of Aspergillus niger[J]. Bioresource Technology, 101(6): 1727−1731. doi: 10.1016/j.biortech.2009.10.012
|
[130] |
Wang C C, Zhang Q C, Yan C A, Tang G Y, Zhang M Y, Bao Y B, Gu R H, Xiang P. 2023a. Heavy metal(loid)s in agriculture soils, rice, and wheat across China: Status assessment and spatiotemporal analysis[J]. Science of the Total Environment, 882: 163361. doi: 10.1016/j.scitotenv.2023.163361
|
[131] |
Wang F Y, Cheng P, Zhang S, Zhang S, Sun Y H. 2022b. Contribution of arbuscular mycorrhizal fungi and soil amendments to remediation of a heavy metal–contaminated soil using sweet sorghum[J]. Pedosphere, 32(6): 844−855. doi: 10.1016/j.pedsph.2022.06.011
|
[132] |
Wang Hongpeng. 2020. Study on In–situ Passivation Materials for Remediation of Calcareous Cadmium Contaminated Soil[D]. Beijing: China University of Geosciences (Beijing), 1–85 (in Chinese with English abstract).
|
[133] |
Wang Huizhong, He Cuiping. 2002. Effects of the heavy metals stress on root growth and vigour of turfgrass[J]. Grassland of China, 24(3): 55−58 (in Chinese with English abstract).
|
[134] |
Wang Jin, Su Xianfa, Wang Dongchao, Wang Xuefeng, Zhu Guifen. 2008. The effect of copper, cadmium to growth and catalase and amylase of wheat[J]. Journal of Henan Normal University (Natural Science), 36(2): 92−94 (in Chinese with English abstract).
|
[135] |
Wang K, Qiao Y H, Zhang H Q, Yue S Z, Li H F, Ji X H, Liu L S. 2018. Bioaccumulation of heavy metals in earthworms from field contaminated soil in a subtropical area of China[J]. Ecotoxicology and Environmental Safety, 148: 876−883. doi: 10.1016/j.ecoenv.2017.11.058
|
[136] |
Wang L, Zou R, Cai J H, Liu G H, Jiang Y, Chai G Q, Qin S, Fan C W. 2023b. Effect of Cd toxicity on root morphology, ultrastructure, Cd uptake and accumulation of wheat under intercropping with Solanum nigrum L[J]. Heliyon, 9(6): 1−9.
|
[137] |
Wang Lin, Xu Yingming, Sun Yang, Liang Xuefeng, Qin Xu. 2010. Immobilization of cadmium contaminated soils using sepiolite and its compound materials[J]. Chinese Journal of Environmental Engineering, 4(9): 2093−2098 (in Chinese with English abstract).
|
[138] |
Wang Meiyan, Liu Yang, Zhu Weichen, Rong Kaiyu, Yang Feiyu, Sun Bowen, Wang Fei. 2020. Distribution and present situation analysis of heavy metal pollution in green space soil of Tianjin Central Urban Areas[J]. Environmental Science and Technology, 43(4): 184−191 (in Chinese with English abstract).
|
[139] |
Wang Qikai, Guo Fenjuan, Sun Guohong, Lin Dasong, Xu Yingming, Liu Jingru, Yu Shilei. 2015. Combined effects of biochar and fertilizer on cadmium contaminated soil remediation[J]. Journal of Agricultural Resources and Environment, 32(6): 583−589 (in Chinese with English abstract).
|
[140] |
Wang Qin’er, Zeng Ying, Li Limei. 2007. Advances on the effect of cadmium damage on physiology and ecology of rice[J]. Northern Rice, (4): 12−16 (in Chinese with English abstract).
|
[141] |
Wang Saiyi, Wang Yijun, Zhao Yazhou, Hou Yanqi. 2023. Research advances in soil heavy metal pollution and its phytoremediation[J]. Journal of Agriculture, 13(2): 20−23 (in Chinese with English abstract).
|
[142] |
Wang S, Gao B, Zimmerman A R, Li Y, Ma L, Harris W. G, Migliaccio K W. 2015. Physicochemical and sorptive properties of biochars derived from woody and herbaceous biomass[J]. Chemosphere, 134: 257−262. doi: 10.1016/j.chemosphere.2015.04.062
|
[143] |
Wang Xing, Wang Gejiao, Shi Kaixiang. 2023. Research progress in microbial detoxification of cadmium and bioremediation based on microorganism–plant interaction[J]. Microbiology Bulletin, 50(4): 1666−1680 (in Chinese with English abstract).
|
[144] |
Wang Y, Xing W, Liang X, Xu Y, Wang Y, Huang Q, Li L. 2022a. Effects of exogenous additives on wheat Cd accumulation, soil Cd availability and physicochemical properties in Cd–contaminated agricultural soils: A meta–analysis[J]. Science of the Total Environment, 808: 152090. doi: 10.1016/j.scitotenv.2021.152090
|
[145] |
Wang Yongquan, Li Ye, Hu Jin, Zhao Jianbo, Jing Qi. 2014. Research on the remediation technology of Cd contaminated agricultural soil by composite regulating agent[J]. Journal of Wuhan University of Technology, 36(5): 123−128 (in Chinese with English abstract).
|
[146] |
Wei Zhongping, Zhu Yongle, Zhao Chutong, Tang Jiaxi, Gao Yingxu, Li Mengxue. 2020. Research advances on biochar adsorption mechanism for heavy metals and its application technology[J]. Chinese Journal of Soil Science, 51(3): 741−747 (in Chinese with English abstract).
|
[147] |
Wu Y J, Ma L Y, Liu Q Z, Vestergård M, Topalovic O, Wang Q, Zhou Q Y, Huang L K, Yang X E, Feng Y. 2020. The plant–growth promoting bacteria promote cadmium uptake by inducing a hormonal crosstalk and lateral root formation in a hyperaccumulator plant Sedum alfredii[J]. Journal of Hazardous Materials, 395: 122661. doi: 10.1016/j.jhazmat.2020.122661
|
[148] |
Xie Y, He N, Wei M, Wen T Y, Wang X T, Liu H K, Zhong S Q, Xu H. 2021. Cadmium biosorption and mechanism investigation using a novel Bacillus subtilis KC6 isolated from pyrite mine[J]. Journal of Hazardous Materials, 301: 145−152.
|
[149] |
Xing Ting. 2022. Characteristics of Cadmium Adsorption in Soil and Cadmium Accumulation in Crops in Belt Intercropping System of Maize–soybean[D]. Ya’an: Sichuan Agricultural University, 1–52 (in Chinese with English abstract).
|
[150] |
Xiong Jieqian, Gong Xaiofeng, Jiang Liang, Li Haolin, Yuan Shaofen, Lin Yuan, Wu Li. 2021. Toxic effects of zinc and cadium on the benthic organisms in sediments of Lake Poyang and verification of quality guideline[J]. Journal of Lake Sciences, 33(6): 1687−1700 (in Chinese with English abstract). doi: 10.18307/2021.0607
|
[151] |
Xiong Juan, Wang Yihan, Chen Chang, Hou Jingtao, Xv Yun, Wang Mingxia, Tan Wenfeng. 2022. Research progress on the remediation of Sedum plumbizincicola in cadmium–contaminated farmland soils[J]. Journal of Agro–Environment Science, 41(3): 441−454 (in Chinese with English abstract).
|
[152] |
Xiong Minxian, Wu Di, Xu Xiangning, Zheng Mingyang, Xing Tao. 2021. Advances in toxic effects of soil heavy metal cadmium on higher plants[J]. Journal of Ecotoxicology, 16(6): 133−149 (in Chinese with English abstract).
|
[153] |
Xiong Mingyue, Guo Jiahang, Zhang Fuqiong, Han Fei, Liu Jianhong, Yang Yun, Zhong Hao, Huang Jingxin. 2022. Effects of different nitrogen fertilizers on remediation of soil cadmium pollution by Bidens pilosa[J]. Acta Agricultural Universitatis Jiangxiensis, 44(6): 1592−1600 (in Chinese with English abstract).
|
[154] |
Xiong Yuhui, Yang Xiaoe, Ye Zhengqian, He Bing. 2004. Comparing the characteristics of growth response and accumulation of cadmium and lead by Sedum alf redii Hance[J]. Journal of Northwest A&F University (Natural Science Edition), (6): 101−106 (in Chinese with English abstract).
|
[155] |
Xu Hongxia, Weng Xiaoyan, Mao Weihua, Yang Yong. 2005. Effects of cadmium stress on photosynthesis, chlorophyll fluorescence characteristics and excitation energy distribution in leaves of rice[J]. Chinses Journal of Rice Science, 19(4): 338−342 (in Chinese with English abstract).
|
[156] |
Xu Liangjiang, Zhang Mingli, Yang Hao. 2011. Effects of cadmium stress on photosynthesis, chlorophyll fluorescence characteristics and excitation energy distribution in leaves of rice[J]. Journal of Anhui Agricultural Science, 39(6): 3419−3422 (in Chinese with English abstract).
|
[157] |
Xu P, Sun C X, Ye X Z, Xiao W D, Zhang Q, Wang Q. 2016. The effect of biochar and crop straws on heavy metal bioavailability and plant accumulation in a Cd and Pb polluted soil[J]. Ecotoxicology and Environmental Safety, 132: 94−100. doi: 10.1016/j.ecoenv.2016.05.031
|
[158] |
Xu Y, Liang X F, Xu Y M, Qin X, Huang Q Q, Wang L, Sun Y B. 2017. Remediation of heavy metal–polluted agricultural soils using clay minerals: A review[J]. Pedosphere, 27(2): 193−204. doi: 10.1016/S1002-0160(17)60310-2
|
[159] |
Yan Huaxiao, Zhao Hui, Gao Dengzheng. 2007. Preliminary study of the effect of cadmium ions on maize seed germination and growth[J]. Crops, 23(5): 25−28 (in Chinese with English abstract).
|
[160] |
Yan Shulan, Zhao Xiuhong, Luo Qishi. 2020. Bibliometrics–based development trends of solidification/stabilization technology for the remediation of sites contaminated by heavy metals[J]. Journal of Agro–Environmental Science, 39(2): 229−238 (in Chinese with English abstract).
|
[161] |
Yang Jurong, Huang Yi. 1994. Mechanism of heavy metal tolerance of plants[J]. Chinese Journal of Ecology, 15(6): 20−26 (in Chinese with English abstract).
|
[162] |
Yang Jurong, He Jianqun, Zhang Guoxiang, Mao Xianqiang. 1995. Tolerance mechanism of crops to Cd pollution[J]. Chinese Journal of Applied Ecology, 6(1): 87−91 (in Chinese with English abstract).
|
[163] |
Yang Mengli. 2019. Study on Passivation and Aftereffect of Cadmium Pollution in Farmland Soil[D]. Hefei: Anhui Agricultural University, 1–71 (in Chinese with English abstract).
|
[164] |
Yang Wenhao. 2022. Research on Remediation Effect of Compound Microbial Inoculum on Cadmium Contaminated Wheat Soil[D]. Harbin: Northeast Agricultural University, 1–57 (in Chinese with English abstract).
|
[165] |
Yang Xianni. 2022. The Synergistic Effects of Calcite Enriched Biochar and Phosphorus Solubilizing Bacteria on Cadmium Immobilization in a Paddy Soil: The Role of Organic Acids and Organic Matters[D]. Yangzhou: Yangzhou University, 1–103 (in Chinese with English abstract).
|
[166] |
Yang Xiong. 2022. Mechanisms of Heavy Metals Adsorption on Typical Iron and Manganese Oxides under Electrochemical Control and Its Application in Contaminated Soils Remediation[D]. Wuhan: Huazhong Agricultural University, 1–191 (in Chinese with English abstract).
|
[167] |
Yang Yanping. 2019. Study on Remediation and Influencing Factors of Mineral Materials in Soil Contamition by Heavy Metals[D]. Beijing: China University of Geosciences (Beijing), 1–85 (in Chinese with English abstract).
|
[168] |
Yang Z, Zhang Z, Chai L, Wang Y, Liu Y, Xiao R Y. 2016. Bioleaching remediation of heavy metal–contaminated soils using Burkholderia sp. Z–90[J]. Journal of Hazardous Materials, 301: 145−152. doi: 10.1016/j.jhazmat.2015.08.047
|
[169] |
Yu Fangming, Liu Kehui, Liu Hua, Deng Hua, Zhou Zhenming, Chen Zhaoshu, Li Shunming. 2012. Antioxidative responses to cadmium stress in the leaves of Oryza saliva L. in different growth period[J]. Ecology and Environmental Sciences, 21(1): 88−93 (in Chinese with English abstract).
|
[170] |
Yuan C, Li Q, Sun Z, Sun H. 2021. Effects of natural organic matter on cadmium mobility in paddy soil: A review[J]. Journal of Environmental Sciences, 104: 204−215. doi: 10.1016/j.jes.2020.11.016
|
[171] |
Zhang G, Fukami M, Sekimoto H. 2000. Genotypic differences in effects of cadmium on growth and nutrient compositions in wheat[J]. Journal of Plant Nutrition, 23(9): 1337−1350. doi: 10.1080/01904160009382104
|
[172] |
Zhang Han, Li Huan, Su Changqing, Deng Xinhui. 2023. Research progress of microbial remediation of cadmium pollution[J]. Journal of Xiangtan University (Natural Science Edition), 45(3): 53−65 (in Chinese with English abstract).
|
[173] |
Zhang Heng, Xiong Mingbiao, Wang Qianxin, Sun Bowen, Rao Yichi, Cheng Zhang, Xu Xiaoxun, Yang Zhanbiao, Xian Junren, Zhu Xuemei, Yang Shaoping, Yang Yuanxiang. 2022. Remediation potential of taraxacum kok–saghyz rodin on lead and cadmium contaminated farmland soil[J]. Environmental Science, 43(8): 4253−4261 (in Chinese with English abstract).
|
[174] |
Zhang K, Yi Y Q, Fang Z Q. 2023. Remediation of cadmium or arsenic contaminated water and soil by modified biochar: A review[J]. Chemosphere, 311: 136914. doi: 10.1016/j.chemosphere.2022.136914
|
[175] |
Zhang Lihong, Li Peijun, Li Xuemei, Meng Xuelian, Xu Chengbin. 2005. Effects of cadmium stress on the growth and physiological characteristics of wheat seedlings[J]. Chinese Journal of Ecology, 24(4): 458−460 (in Chinese with English abstract).
|
[176] |
Zhang Lu. 2021. Study on the Construction of Composite Microbial Agent and Its Remediation Effect on Pb and Cd Contaminated Soil from Iron Tailings[D]. Lanzhou: Lanzhou Jiaotong University, 1–68 (in Chinese with English abstract).
|
[177] |
Zhang Qunli, Xie Haiyun, Chen Jialing, Song Zixin, Jin Yanling, Chen Haijun, Zeng Peng, Liu Dianwen. 2024. Research status of heavy metal contaminated soil remediation by solidification/stabilization technology[J]. Environmental Protection Science, 50(3): 96−102 (in Chinese with English abstract).
|
[178] |
Zhang Wangshou, Li Xiaoxiu, Huang Wenjiang, Li Jianhui, Ren Wanping, Gao Zhongling. 2010. Comprehensive assessment methodology of soil quality under different land use conditions[J]. Transactions of the Chinese Society of Agricultural Engineering, 26(12): 311−318 (in Chinese with English abstract).
|
[179] |
Zhang Weilan, Zhang Yue, Liu Ping, Duan Changqun, Liu Change. 2022. Research progress of earthworm in phytoremediation of heavy metal contaminated soil[J]. Environmental Science & Technology, 45(8): 155−165 (in Chinese with English abstract).
|
[180] |
Zhang Xiaoxu. 2020. Effect of Exogenous Organic Matter on Migration and Transformation of Heavy Metal Cadmium in Rice[D]. Yangzhou: Yangzhou University, 1–97 (in Chinese with English abstract).
|
[181] |
Zhang Xiaoying, Chen Su, Liu Ying, Feng Tianzheng, Zhao Lei. 2023. Research progress in biochar aging and its effect on the adsorption and fixation of heavy metals[J]. Journal of Agricultural Resources and Environment, 40(4): 852−863 (in Chinese with English abstract).
|
[182] |
Zhang Xuhui. 2019. The Effect of Cadmium–Tolerant Microorganism Combined with Biochar on Cadmium Fractions of Soil and Cadmium Uptake by Plants[D]. Jiangsu: Nanjing Agricultural University, 1–88 (in Chinese with English abstract).
|
[183] |
Zhang Yali, Shen Qirong, Jiang Yang. 2001. Effect of organic manure on the amelioration of Cd–polluted soil[J]. Acta Pedologica Sinica, 38(2): 212−218 (in Chinese with English abstract).
|
[184] |
Zhang Yuan, Xiao Zufei, Li Gang, Feng Jing, Shi Yongsong. 2019. Review and prospection of soil heavy metal remediation with combined earthworm–plant technology[J]. Environmental Chemistry, 38(11): 2510−2518 (in Chinese with English abstract).
|
[185] |
Zhao Zhuoya, Wang Zhigang, Bi Yongguo, Li Yueqiao, Huang Qiuxian. 2009. The distributions and risk assessment of heavy metals in the soils from different urban greenland region of Baoding city[J]. Journal of Agricultural University of Hebei, 32(2): 16−20 (in Chinese with English abstract).
|
[186] |
Zhou Chuikang, Mao Zhansheng, Fang Xianzhi, Zhao Keli, Ma Jialun, Liu Dan, Ye Zhengqian. 2023. Effect of AC electric field frequency on remediation of cadmium contaminated soil by willow–Sedum alfredii Hance mixed planting[J]. Chinese Journal of Environmental Engineering, 17(9): 3046−3053 (in Chinese with English abstract).
|
[187] |
Zhou Geng, Deng Chenggang, Cao Linyou, Chen Shuai, Tian Yun, Lu Xiangyang. 2016. Screening, identification and characterization of a cadmium resistant strain[J]. Chemistry and Bioengineering, 33(3): 43−47 (in Chinese with English abstract).
|
[188] |
Zhou Jing, Wang Zhe, Gu Guolin, Han Yujie, Liu Chunjiang. 2014. Characteristics of the soil heavy metal cadmium in Shanghai Binjiang Forest Park[J]. World Journal of Forestry, (3): 28−33 (in Chinese with English abstract).
|
[189] |
Zhou Liqiang, Yin Bin, Wu Longhua, Luo Yongming. 2013. Effects of different organic amendments on uptake of heavy metals in rice from contaminated soil[J]. Soils, 45(2): 227−232 (in Chinese with English abstract).
|
[190] |
Zhu Qihong, Huang Daoyou, Liu Guosheng, Zhu Guangxu, Zhu Hanhua, Liu Shengping. 2009. Effects and mechanism of lime and sepiolite on remediation of Cd contaminated soils[J]. Journal of Soil and Water Conservation, 23(1): 111−116 (in Chinese with English abstract).
|
[191] |
Zou Jiahui, Lin Qing, Shao Mingyan, Xu Shaohui. 2023. Leaching behavior of Cu, Cd, and Zn in combined pollution soil as affected by biochar[J]. Acta Scientiae Circumstantiae, 43(9): 333−345 (in Chinese with English abstract).
|
[192] |
安婷婷, 黄帝, 王浩, 张一, 陈应龙. 2021. 植物响应镉胁迫的生理生化机制研究进展[J]. 植物学报, 56(3): 347−362.
|
[193] |
曹瑞芹, 杨忠芳, 余涛. 2024. 镉锌稳定同位素地球化学及其在土壤等地质体中的危害与治理研究进展[J]. 中国地质, 51(3): 833−864.
|
[194] |
常海伟, 刘代欢, 贺前锋. 2018. 重金属污染农田微生物修复机理研究进展[J]. 微生物学杂志, 38(2): 120−127.
|
[195] |
陈保冬, 于萌, 郝志鹏, 谢伟, 张莘. 2019. 丛枝菌根真菌应用技术研究进展[J]. 应用生态学报, 30(3): 1035−1046.
|
[196] |
陈盾, 王小兵, 汪晓丽, 封克, 张绪美. 2020. 镉污染红壤的钝化剂筛选及钝化效果[J]. 生态与农村环境学报, 36(1): 115−120.
|
[197] |
陈宏, 徐秋曼, 王葳. 2000. 镉对小麦幼苗脂质过氧化和保护酶活性的影响[J]. 西北植物学报, 20(3): 399−403.
|
[198] |
陈丽丽, 鲁伟丹, 李俊华, 罗彤, 孙奔奔. 2022. 三种植物生长与富集特性对镉污染土壤修复的响应[J]. 石河子大学学报(自然科学版), 40(2): 172−179.
|
[199] |
陈敏妮, 聂小奇, 张杏锋, 何川黔, 高波. 2023. 蚯蚓、秸秆和柠檬酸对少花龙葵与翅果菊修复锌铅镉污染土壤的影响[J]. 环境科学, 44(3): 1714−1726.
|
[200] |
陈媛. 2007. 土壤中镉及镉的赋存形态研究进展[J]. 广东微量元素科学, 14(7): 7−13.
|
[201] |
陈泽雄, 朱凰榕, 周志军, 赵秋香. 2019. 改性蒙脱石修复镉污染对水稻根际土壤酶活性的影响[J]. 农业资源与环境学报, 36(4): 528−533.
|
[202] |
程志龙, 王翔翔, 杨英, 吴亮, 张田田, 周语桐, 章飞翔. 2023. 不同改良剂对土壤–水稻体系中Cd迁移积累的影响[J]. 环境科学与技术, 46(2): 24−31.
|
[203] |
慈敦伟, 姜东, 戴廷波. 2005. 镉毒害对小麦幼苗光合及叶绿素荧光特性的影响[J]. 麦类作物学报, 25(5): 88−91.
|
[204] |
崔俊义, 马友华, 王陈丝丝, 陈亮妹, 吴林春, 胡宏祥. 2017. 农田土壤镉污染原位钝化修复技术的研究进展[J]. 中国农学通报, 33(30): 79−83.
|
[205] |
丁淑芳, 谢正苗, 吴卫红, 周溶冰, 陈建军. 2012. 含磷物质原位化学钝化重金属污染土壤的研究进展[J]. 安徽农业科学, 40(35): 17093−17097.
|
[206] |
董立宽, 方斌. 2017. 茶园土壤重金属乡镇尺度下空间异质性分析—以江浙优质名茶种植园为例[J]. 地理研究, 36(2): 391−404.
|
[207] |
董萌, 赵运林, 库文珍, 庹瑞锐, 戴枚斌, 易合成. 2011. 洞庭湖湿地8种优势植物对镉的富集特征[J]. 生态学杂志, 30(12): 2783−2789.
|
[208] |
范占煌, 张振乾. 2021. 甘蓝型油菜在镉污染土壤修复中的应用研究[J]. 中国农学通报, 37(30): 72−76. doi: 10.11924/j.issn.1000-6850.casb2020-0860
|
[209] |
冯凤玲, 成杰民, 王德霞. 2006. 蚯蚓在植物修复重金属污染土壤中的应用前景[J]. 土壤通报, 37(4): 809−814. doi: 10.3321/j.issn:0564-3945.2006.04.042
|
[210] |
顾明华, 李志明, 陈宏, 雷静, 方圆, 唐翠荣, 沈方科. 2020. 施锰对土壤锰氧化物形成及镉固定的影响[J]. 生态环境学报, 29(2): 360−368.
|
[211] |
郭炳跃, 杨锟鹏, 张璟, 戴俊成, 程知言, 张亚平. 2023. 二氧化锰/氨基改性生物炭对铅、镉复合污染土壤的钝化修复研究[J]. 生态与农村环境学报, 39(3): 422−428.
|
[212] |
Haider U F. 2021. 生物炭与微生物(哈茨木霉和枯草芽孢杆菌)复合施用可提高谷类豆科作物的生产力、修复土壤镉污染[D]. 兰州: 甘肃农业大学, 1–153.
|
[213] |
韩娟, 赵金莉, 贺学礼. 2016. 白洋淀植物重金属积累特性的研究[J]. 河北农业大学学报, 39(4): 31−36.
|
[214] |
何俊瑜, 任艳芳, 任明见, 常会庆, 王阳阳. 2009. 镉对不同小麦品种种子萌发的影响[J]. 中国农学通报, 25(10): 235−240.
|
[215] |
洪仁远, 杨广笑, 刘东华, 蒲长光. 1991. 镉对小麦幼苗的生长和生理生化反应的影响[J]. 华北农学报, 6(3): 70−75.
|
[216] |
侯秀, 王祖伟. 2009. 铁锰氧化矿物添加对土壤镉有效态及生物效应的影响[J]. 农业环境科学学报, 28(11): 2313−2317. doi: 10.3321/j.issn:1672-2043.2009.11.018
|
[217] |
胡青云, 唐佑根, 张志强, 罗颖, 张小毅, 肖欢, 敖和军. 2021. 4种修复剂对镉污染农田土壤及糙米的降镉效果[J]. 湖南农业科学, (3): 51−54.
|
[218] |
黄冬芬. 2008. 水稻对土壤重金属镉的响应及其调控[D]. 扬州: 扬州大学, 1–136.
|
[219] |
黄柯依, 刘玉, 任雯靖, 贺信, 张臻, 黄芸培, 姜晓婷, 黄高翔. 2023. 两种不同土壤对水稻镉吸收及其动态积累特征的影响[J]. 土壤通报, 54(2): 432−440.
|
[220] |
黄擎, 刘博睿, 蔡华杰, 包丽颖. 2014. 冻融循环及有机肥配施对黑土中镉形态的影响[J]. 环境污染与防治, 36(12): 38−42.
|
[221] |
黄卫, 庄荣浩, 刘辉, 王志国, 张纯, 喻鹏. 2022. 农田土壤镉污染现状与治理方法研究进展[J]. 湖南师范大学自然科学学报, 45(1): 49−56.
|
[222] |
黄玉山, 罗广华, 关棨文. 1997. 镉诱导植物的自由基过氧化损伤[J]. 植物学报, 39(6): 522−526.
|
[223] |
贾夏, 周春娟, 董岁明. 2011. 镉胁迫对小麦的影响及小麦对镉毒害响应的研究进展[J]. 麦类作物学报, 31(4): 786−792.
|
[224] |
简敏菲, 杨叶萍, 余厚平, 龚秋林, 陈勇玲. 2015. 不同浓度Cd2+胁迫对苎麻叶绿素及其光合荧光特性的影响[J]. 植物生理学报, 51(8): 1331−1338.
|
[225] |
姜春晓. 2009. 高效抗重金属菌株的选育及其在生物修复镉污染土壤中的应用[D]. 天津: 南开大学, 1–162.
|
[226] |
姜晶, 邓精灵, 盛光遥. 2022. 生物炭老化及其对重金属吸附影响研究进展[J]. 生态环境学报, 31(10): 2089−2100.
|
[227] |
孔祥臻, 何伟, 秦宁, 何玘霜, 王雁, 欧阳慧灵, 徐福留. 2011. 重金属对淡水生物生态风险的物种敏感性分布评估[J]. 中国环境科学, 31(9): 1555−1562.
|
[228] |
李铖, 李芳柏, 吴志峰, 程炯. 2015. 景观格局对农业表层土壤重金属污染的影响[J]. 应用生态学报, 26(4): 1137−1144.
|
[229] |
李霏, 李书鹏, 刘渊文, 郭丽莉, 刘颖, 杨乐巍. 2022. 基于文献计量的土壤生物修复技术研究现状及进展分析[J]. 土壤通报, 53(5): 1237−1247.
|
[230] |
李宏, 江澜. 2009. 土壤重金属污染的微生物修复研究进展[J]. 贵州农业科学, 37(7): 72−74. doi: 10.3969/j.issn.1001-3601.2009.07.026
|
[231] |
李剑睿, 徐应明. 2022. 蛭石修复城郊镉污染菜地土壤研究[J]. 安徽农业科学, 50(15): 59−62,65. doi: 10.3969/j.issn.0517-6611.2022.15.016
|
[232] |
李婧, 周艳文, 陈森, 高小杰. 2015. 我国土壤镉污染现状、危害及其治理方法综述[J]. 安徽农学通报, 21(24): 104−107. doi: 10.3969/j.issn.1007-7731.2015.24.044
|
[233] |
李瑞美, 王果, 方玲. 2002. 钙镁磷肥与有机物料配施对作物镉铅吸收的控制效果[J]. 土壤与环境, 11(4): 348−351.
|
[234] |
李晓晖, 艾仙斌, 李亮, 王玺洋, 辛在军, 孙小艳. 2022. 新型改性稻壳生物炭材料对镉污染土壤钝化效果的研究[J]. 生态环境学报, 31(9): 1901−1908.
|
[235] |
刘红梅, 杨凯, 肖正午. 2018. 土壤镉污染治理及外源调控研究进展[J]. 作物研究, 32(5): 449−453.
|
[236] |
刘蕊, 罗璇, 李松, 张辉, 刘兴. 2020. 生物炭在土壤中的老化及其吸附重金属的研究进展[J]. 环境监测管理与技术, 32(5): 1−5. doi: 10.3969/j.issn.1006-2009.2020.05.001
|
[237] |
刘柿良, 杨容孑, 马明东, 蒋潘, 赵燕. 2015. 土壤镉胁迫对龙葵(Solanum nigrum L. )幼苗生长及生理特性的影响[J]. 农业环境科学学报, 34(2): 240−247. doi: 10.11654/jaes.2015.02.006
|
[238] |
刘伟, 郜允兵, 周艳兵, 潘瑜春, 戴华阳, 高秉博, 阎跃观. 2019. 农田土壤重金属空间变异多尺度分析—以北京顺义土壤Cd为例[J]. 农业环境科学学报, 38(1): 87−94.
|
[239] |
刘文胜, 周婵, 郭盘江, 李世友, 于洋. 2010. 镉对玉米种子萌发及胚生长的影响[J]. 湖北农业科学, 49(4): 842−844. doi: 10.3969/j.issn.0439-8114.2010.04.024
|
[240] |
刘意章, 肖唐付, 熊燕, 宁增平, 双燕, 李航, 马良, 陈海燕. 2019. 西南高镉地质背景区农田土壤与农作物的重金属富集特征[J]. 环境科学, 40(6): 2877−2884.
|
[241] |
刘悦畅, 李保珍, 王涛, 王兰. 2020. 2种菌联合修复农田土壤镉污染的研究[J]. 水土保持学报, 34(4): 364−369.
|
[242] |
刘昭兵, 纪雄辉, 彭华, 石丽红, 李洪顺. 2010. 水分管理模式对水稻吸收积累镉的影响及其作用机理[J]. 应用生态学报, 21(4): 908−914.
|
[243] |
卢德亮, 乔璐, 陈立新, 胡斌, 周健平, 王展超, 王燕. 2012. 哈尔滨市区绿地土壤重金属污染特征及植物富集[J]. 林业科学, 48(8): 16−24. doi: 10.11707/j.1001-7488.20120804
|
[244] |
鲁洪娟, 周德林, 叶文玲, 樊霆, 马友华. 2019. 生物有机肥在土壤改良和重金属污染修复中的研究进展[J]. 环境污染与防治, 41(11): 1378−1383.
|
[245] |
卢维宏, 刘娟, 张乃明, 张玉娟, 郝康伟, 任利娟, 于畅, 侯红. 2022. 设施菜地土壤重金属累积及影响因素研究[J]. 中国环境科学, 42(6): 2744−2753. doi: 10.3969/j.issn.1000-6923.2022.06.029
|
[246] |
骆永明, 滕应. 2018. 我国土壤污染的区域差异与分区治理修复策略[J]. 中国科学院院刊, 33(2): 145−152.
|
[247] |
马娇阳, 保欣晨, 王坤, 王成尘, 崔道雷, 张梦妍, 向萍. 2021. 土壤镉污染的人体健康风险评研究: 生物有效性与毒性效应[J]. 生态毒理学报, 16(6): 120−132.
|
[248] |
马丽娟, 邵云, 李春喜, 姜丽娜. 2007. Cd2+胁迫对小麦幼苗生长及呼吸作用的影响[J]. 西北植物学报, 27(6): 1185−1190.
|
[249] |
马玉, 李团结, 王迪, 彭艳超, 蔡钰灿, 王爱军. 2011. 珠江口滨海湿地沉积物重金属污染现状及潜在生态危害[J]. 热带地理, 31(4): 353−356.
|
[250] |
牟婷婷, 周通, 徐建, 甘信宏. 2022. 土壤–小麦体系的镉积累特征及影响因素[J]. 土壤, 54(3): 556−563.
|
[251] |
牛国梁. 2022. 有机改性粘土矿物吸附镉的特征及其对污染土壤镉的钝化效应[D]. 泰安: 山东农业大学, 1–75.
|
[252] |
秦冉, 娄飞, 代良羽, 王虎, 周凯, 何守阳, 何腾兵, 付天岭. 2021. 地质高背景区镉污染稻田中低累积水稻品种筛选[J]. 南方农业学报, 52(10): 2709−2716. doi: 10.3969/j.issn.2095-1191.2021.10.010
|
[253] |
秦天才, 吴玉树, 黄巧云, 胡红青. 1997. 镉铅单一和复合污染对小白菜抗坏血酸含量的影响[J]. 生态学杂志, 16(3): 31−34.
|
[254] |
任继凯, 陈清朗, 陈灵芝, 韩荣庄, 姚依群, 孔凡志, 缪有贵. 1982. 土壤镉污染与作物[J]. 植物生态学与地植物学丛刊, 6(2): 131−141.
|
[255] |
任静华, 范健, 孙宇, 廖启林, 许伟伟, 刘玲, 韩超, 顾雪元. 2023. 钝化土壤根际pH值和O2精细变化特征研究[J]. 中国环境科学, 43(4): 1782−1790.
|
[256] |
任凌伟. 2017. 典型矿物材料钝化修复重金属污染农田土壤的作用及机理研究[D]. 杭州: 浙江大学, 1–80.
|
[257] |
荣兴民, 黄巧云, 陈雯莉, 梁巍等. 2008. 土壤矿物与微生物相互作用的机理及其环境效应[J]. 生态学报, 28(1): 376−387. doi: 10.3321/j.issn:1000-0933.2008.01.044
|
[258] |
陕红. 2009. 有机物对土壤镉生物有效性的影响及机理[D]. 北京: 中国农业科学院, 1–103.
|
[259] |
邵云, 冯淑利, 李春喜, 姜丽娜, 候小丽, 鲁旭阳. 2006. Cd2+胁迫对小麦幼苗生理活性的影响[J]. 安徽农业科学, 34(5): 836−838. doi: 10.3969/j.issn.0517-6611.2006.05.006
|
[260] |
沈一尘, 涂晨, 邱炜, 朱侠, 范婉仪, 曹振宇, 朱晓芳, 骆永明. 2023. 镉污染土壤上不同水稻品种的镉积累与减污潜力[J]. 生态与农村环境学报, 39(4): 547−555.
|
[261] |
沈建秀. 2017. 接种根瘤菌后刺槐对镉胁迫的响应[D]. 西安: 西北农林科技大学, 1–63.
|
[262] |
施农农, 陈志伟. 1999. 镉胁迫下水稻种子的萌芽生长及体内水解酶的活性变化[J]. 农业环境保护, 18(5): 213−216.
|
[263] |
史琼彬. 2016. 有机物料对紫色水稻土颗粒有机质及镉生物有效性的影响[D]. 重庆: 西南大学, 1–56.
|
[264] |
石阳阳. 2020. 生物炭与Cd耐受菌复配对Cd污染土壤修复及小白菜安全生产的影响[D]. 雅安: 四川农业大学, 1–69.
|
[265] |
司马小峰, 孟玉, 吴东彪, 于鹏, 沈贤城, 李堃. 2021. 生物炭–超富集植物联合修复镉污染土壤的研究[J]. 安徽农业科学, 49(6): 80−84. doi: 10.3969/j.issn.0517-6611.2021.06.023
|
[266] |
宋小旺. 2020. 铁锰氧化物生物炭吸附/钝化镉研究[D]. 广州: 广东工业大学, 1–74.
|
[267] |
宋玉婷, 雷泞菲. 2018. 我国土壤镉污染的现状及修复措施[J]. 西昌学院学报(自然科学版), 32(3): 79−83.
|
[268] |
苏徳纯, 黄焕忠. 2002. 油菜作为超累积植物修复镉污染土壤的潜力[J]. 中国环境科学, 22(1): 48−51. doi: 10.3321/j.issn:1000-6923.2002.01.012
|
[269] |
苏平. 2009. 硫化物沉淀法及其对金属硫化物去除率的探讨[J]. 中国有色冶金, (4): 6−10. doi: 10.3969/j.issn.1672-6103.2009.04.002
|
[270] |
孙境蔚, 胡恭任, 于瑞莲, 崔建勇, 颜妍, 张云峰. 2020. 铁观音茶园土壤–茶树体系中重金属的生物有效性[J]. 环境化学, 39(10): 2765−2776.
|
[271] |
汤叶涛, 仇荣亮, 曾晓雯, 方晓航. 2005. 一种新的多金属超富集植物–圆锥南芥(Arabispaniculata L.)[J]. 中山大学学报(自然科学版), 44(4): 135−136.
|
[272] |
唐非, 雷鸣, 唐贞, 杨仁斌, 宋正国, 唐世荣, 彭莎, 廖海玉. 2013. 不同水稻品种对镉的积累及其动态分布[J]. 农业环境科学学报, 32(6): 1092−1098.
|
[273] |
唐结明, 姚爱军, 梁业恒. 2012. 广州市万亩果园土壤重金属污染调查与评价[J]. 亚热带资源与环境学报, 7(2): 27−35. doi: 10.3969/j.issn.1673-7105.2012.02.005
|
[274] |
田伟莉, 柳丹, 吴家森, 王立江, 陈昆柏. 2013. 动植物联合修复技术在重金属复合污染土壤修复中的应用[J]. 水土保持学报, 27(5): 188−192. doi: 10.3969/j.issn.1009-2242.2013.05.037
|
[275] |
田文钢, 姚佳斌, 蒋尚, 刘勇. 2020. 生物修复技术处理重金属污染土壤的研究进展[J]. 环境与发展, 32(12): 34−35.
|
[276] |
田稳, 宗大鹏, 方成刚, 王成尘, 王健敏, 向萍. 2022. 西南典型菜地土壤重金属健康风险和毒性效应[J]. 中国环境科学, 42(10): 4901−4908. doi: 10.3969/j.issn.1000-6923.2022.10.048
|
[277] |
汪瑾, 苏现伐, 王东超, 王学锋, 朱桂芬. 2008. Cu、Cd对小麦幼苗生长代谢及2种酶活性的影响[J]. 河南师范大学学报: 自然科学版, 36(2): 92−94.
|
[278] |
王宏鹏. 2020. 石灰性土壤镉污染原位钝化修复材料研究[D]. 北京: 中国地质大学(北京), 1–85.
|
[279] |
王慧忠, 何翠屏. 2002. 重金属离子胁迫对草坪草根系生长及其活力的影响[J]. 中国草地, 24(3): 55−58.
|
[280] |
王林, 徐应明, 孙扬, 梁学峰, 秦旭. 2010. 海泡石及其复配材料钝化修复镉污染土壤[J]. 环境工程学报, 4(9): 2093−2098.
|
[281] |
王美艳, 柳洋, 朱惟琛, 戎开雨, 杨菲宇, 孙文博, 王菲. 2020. 天津市中心城区绿地土壤重金属污染分布现状分析[J]. 环境科学与技术, 43(4): 184−191.
|
[282] |
王期凯, 郭文娟, 孙国红, 林大松, 徐应明, 刘静茹, 于士雷. 2015. 生物炭与肥料复配对土壤重金属镉污染钝化修复效应[J]. 农业资源与环境学报, 32(6): 583−589.
|
[283] |
王琴儿, 曾英, 李丽美. 2007. 镉毒害对水稻生理生态效应的研究进展[J]. 北方水稻, (4): 12−16. doi: 10.3969/j.issn.1673-6737.2007.04.004
|
[284] |
王赛怡, 王逸君, 赵亚洲, 侯燕琪. 2023. 土壤重金属污染及其植物修复研究进展[J]. 农学学报, 13(2): 20−23. doi: 10.11923/j.issn.2095-4050.cjas2021-0169
|
[285] |
王杏, 王革娇, 史凯祥. 2023. 微生物镉解毒机制及微生物–植物互作修复研究进展[J]. 微生物学通报, 50(4): 1666−1680.
|
[286] |
王涌泉, 李晔, 胡进, 赵建博, 景琪. 2014. 复合型调控剂修复镉污染农田土壤的研究[J]. 武汉理工大学学报, 36(5): 123−128.
|
[287] |
魏忠平, 朱永乐, 赵楚峒, 汤家喜, 高英旭, 李梦雪. 2020. 生物炭吸附重金属机理及其应用技术研究进展[J]. 土壤通报, 51(3): 741−747.
|
[288] |
邢婷. 2022. 玉米大豆带状套作体系中土壤镉吸附及作物镉累积的特性研究[D]. 雅安: 四川农业大学, 1–52.
|
[289] |
熊捷迁, 弓晓峰, 江良, 李昊霖, 袁少芬, 林媛, 吴莉. 2021. 鄱阳湖水体沉积物中Zn、Cd对底栖生物的毒性效应及基准验证[J]. 湖泊科学, 33(6): 1687−1700. doi: 10.18307/2021.0607
|
[290] |
熊娟, 王依涵, 陈畅, 侯静涛, 许运, 汪明霞, 谭文峰. 2022. 伴矿景天修复农田土壤镉污染的研究进展[J]. 农业环境科学学报, 41(3): 441−454. doi: 10.11654/jaes.2021-0909
|
[291] |
熊敏先, 吴迪, 许向宁, 郑明阳, 邢涛. 2021. 土壤重金属镉对高等植物的毒性效应研究进展[J]. 生态毒理学报, 16(6): 133−149. doi: 10.7524/AJE.1673-5897.20201211002
|
[292] |
熊明月, 郭嘉航, 张福琼, 韩飞, 刘剑虹, 杨云, 钟浩, 黄晶心. 2022. 不同氮肥对鬼针草修复土壤镉污染的效果研究[J]. 江西农业大学学报, 44(6): 1592−1600.
|
[293] |
熊愈辉, 杨肖娥, 叶正钱, 何冰. 2004. 东南景天对镉、铅的生长反应与积累特性比较[J]. 西北农林科技大学学报(自然科学版), (6): 101−106.
|
[294] |
徐红霞, 翁晓燕, 毛伟华, 杨勇. 2005. 镉胁迫对水稻光合、叶绿素荧光特性和能量分配的影响[J]. 中国水稻科学, 19(4): 338−342. doi: 10.3321/j.issn:1001-7216.2005.04.010
|
[295] |
徐良将, 张明礼, 杨浩. 2011. 土壤重金属污染修复方法的研究进展[J]. 安徽农业科学, 39(6): 3419−3422. doi: 10.3969/j.issn.0517-6611.2011.06.102
|
[296] |
闫华晓, 赵辉, 高登征. 2007. 镉离子对玉米种子萌发和生长影响的初步研究[J]. 作物杂志, 23(5): 25−28. doi: 10.3969/j.issn.1001-7283.2007.05.010
|
[297] |
闫淑兰, 赵秀红, 罗启仕. 2020. 基于文献计量的重金属固化稳定化修复技术发展动态研究[J]. 农业环境科学学报, 39(2): 229−238. doi: 10.11654/jaes.2019-0757
|
[298] |
杨居荣, 黄翌. 1994. 植物对重金属的耐性机理[J]. 生态学杂志, 15(6): 20−26. doi: 10.3321/j.issn:1000-4890.1994.06.012
|
[299] |
杨居荣, 贺建群, 张国祥, 毛显强. 1995. 农作物对Cd毒害的耐性机理探讨[J]. 应用生态学报, 6(1): 87−91. doi: 10.3321/j.issn:1001-9332.1995.01.018
|
[300] |
杨梦丽. 2019. 农田土壤镉污染的钝化修复与后效研究[D]. 合肥: 安徽农业大学, 1–71.
|
[301] |
杨文昊. 2022. 复合微生物菌剂对镉污染小麦土壤修复效应研究[D]. 哈尔滨: 东北农业大学, 1–57.
|
[302] |
杨仙妮. 2022. 富碳酸钙生物炭与固磷菌协同固定水稻土镉的机制: 根系分泌物和外源有机质的作用[D]. 扬州: 扬州大学, 1–103.
|
[303] |
杨雄. 2022. 电化学调控典型铁锰氧化物吸附重金属及其修复污染土壤机理[D]. 武汉: 华中农业大学, 1–191.
|
[304] |
杨妍萍. 2019. 重金属污染土壤的矿物材料修复效果及影响因素研究[D]. 北京: 中国地质大学(北京), 1–85.
|
[305] |
于方明, 刘可慧, 刘华, 邓华, 周振明, 陈朝述, 李明顺. 2012. 镉污染对水稻不同生育期抗氧化系统的影响[J]. 生态环境学报, 21(1): 88−93. doi: 10.3969/j.issn.1674-5906.2012.01.017
|
[306] |
张涵, 李欢, 苏长青, 邓新辉. 2023. 微生物修复Cd污染研究进展[J]. 湘潭大学学报(自然科学版), 45(3): 53−65.
|
[307] |
张恒, 熊明彪, 王乾鑫, 孙博文, 饶逸驰, 程章, 徐小逊, 杨占彪, 鲜骏仁, 朱雪梅, 杨绍平, 杨远祥. 2022. 橡胶草(TKS)对铅镉污染农田土壤的修复潜力[J]. 环境科学, 43(8): 4253−4261.
|
[308] |
张利红, 李培军, 李雪梅, 孟雪莲, 徐成斌. 2005. 镉胁迫对小麦幼苗生长及生理特性的影响[J]. 生态学杂志, 24(4): 458−460. doi: 10.3321/j.issn:1000-4890.2005.04.023
|
[309] |
张璐. 2021. 复合微生物菌剂的构建及其对铁尾矿铅镉污染土壤的修复效果研究[D]. 兰州: 兰州交通大学, 1–68.
|
[310] |
张群丽, 谢海云, 陈家灵, 宋紫欣, 晋艳玲, 陈海君, 曾鹏, 刘殿文. 2024. 重金属污染土壤修复固化/稳定化技术研究现状及存在问题分析[J]. 环境保护科学, 50(3): 96−102.
|
[311] |
张汪寿, 李晓秀, 黄文江, 李建辉, 任万平, 高中灵. 2010. 不同土地利用条件下土壤质量综合评价方法[J]. 农业工程学报, 26(12): 311−318. doi: 10.3969/j.issn.1002-6819.2010.12.053
|
[312] |
张维兰, 张悦, 刘萍, 段昌群, 刘嫦娥. 2022. 蚯蚓在植物修复重金属污染土壤中的研究进展[J]. 环境科学与技术, 45(8): 155−165.
|
[313] |
张晓绪. 2020. 外源有机质对重金属镉在水稻中迁移转化的影响[D]. 扬州: 扬州大学, 1–97.
|
[314] |
张晓莹, 陈苏, 刘颖, 冯天朕, 晁雷. 2023. 生物炭老化及其对重金属吸附固定的影响研究进展[J]. 农业资源与环境学报, 40(4): 852−863.
|
[315] |
张旭辉. 2019. 耐镉微生物与生物质炭联合对土壤镉形态及植物镉吸收的影响研究[D]. 江苏: 南京农业大学, 1–88.
|
[316] |
张亚丽, 沈其荣, 姜洋. 2001. 有机肥料对镉污染土壤的改良效应[J]. 土壤学报, 38(2): 212−218. doi: 10.3321/j.issn:0564-3929.2001.02.009
|
[317] |
张园, 肖祖飞, 李刚, 冯菁, 史永松. 2019. 蚯蚓–植物联合修复土壤重金属技术研究: 回顾与展望[J]. 环境化学, 38(11): 2510−2518.
|
[318] |
赵卓亚, 王志刚, 毕拥国, 厉月桥, 黄秋娴. 2009. 保定市城市绿地土壤重金属分布及其风险评价[J]. 河北农业大学学报, 32(2): 16−20. doi: 10.3969/j.issn.1000-1573.2009.02.004
|
[319] |
周垂康, 毛詹晟, 方先芝, 赵科理, 马嘉伟, 柳丹, 叶正钱. 2023. 交流电场频率对柳树–东南景天混栽修复镉污染土壤的影响[J]. 环境工程学报, 17(9): 3046−3053.
|
[320] |
周赓, 邓成刚, 曹林友, 陈帅, 田云, 卢向阳. 2016. 一株耐镉细菌的筛选、鉴定与性质研究[J]. 化学与生物工程, 33(3): 43−47. doi: 10.3969/j.issn.1672-5425.2016.03.012
|
[321] |
周菁, 王哲, 顾国林, 韩玉洁, 刘春江. 2014. 上海滨江森林公园土壤镉元素含量分布特征[J]. 林业世界, (3): 28−33.
|
[322] |
周利强, 尹斌, 吴龙华, 骆永明. 2013. 有机物料对污染土壤上水稻重金属吸收的调控效应[J]. 土壤, 45(2): 227−232. doi: 10.3969/j.issn.0253-9829.2013.02.006
|
[323] |
朱奇宏, 黄道友, 刘国胜, 朱光旭, 朱捍华, 刘胜平. 2009. 石灰和海泡石对镉污染土壤的修复效应与机理研究[J]. 水土保持学报, 23(1): 111−116. doi: 10.3321/j.issn:1009-2242.2009.01.024
|
[324] |
邹佳慧, 林青, 邵明艳, 徐绍辉. 2023. 生物炭影响下土壤中铜镉锌复合污染物的淋溶迁移[J]. 环境科学学报, 43(9): 333−345.
|