[1]郭雄飞.重金属胁迫下生物炭和间作对刨花润楠生长及根系形态的影响[J].水土保持研究,2019,26(02):337-344,351.
 GUO Xiongfei.Effects of Biochar and Intercropping on the Growth and Root Morphology of Machilus pauhoi Under Heavy Metal Stress[J].Research of Soil and Water Conservation,2019,26(02):337-344,351.
点击复制

重金属胁迫下生物炭和间作对刨花润楠生长及根系形态的影响

参考文献/References:

[1] Li Z Y, Ma Z W, Kuijp T J V D, et al. A review of soil heavy metal pollution from mines in China:Pollution and health risk assessment[J]. Science of the Total Environment, 2014,468/469:843-853.
[2] Alwabel M I, Usman A R A, Enaggar A H, et al. Conocarpus biochar as a soil amendment for reducing heavy metal availability and uptake by maize plants[J]. Saudi Journal of Biological Sciences, 2015,22(4):503-511.
[3] Hunter D, Ross D S. Evidence for a phytotoxic hydroxy-aluminum polymer in organic soil horizons[J]. Science,1991,251(4997):1056-1058.
[4] Uchimiya M, Chang S C, Klasson K T. Screening biochars for heavy metal retention in soil:Role of oxygen functional groups[J]. Journal of Hazardous Materials, 2011,190(1/3):432-441.
[5] 李金文,顾凯,唐朝生,等.生物炭对土体物理化学性质影响的研究进展[J].浙江大学学报:工学版,2018(1):192-206.
[6] Oh S Y, Seo Y D. Factors affecting sorption of nitro explosives to biochar:pyrolysis temperature, surface treatment, competition, and dissolved metals[J]. Journal of Environmental Quality, 2015,44(3):833-840.
[7] Zwieten V L, Kimber S, Morris S, et al. Effects of biochar from slow pyrolysis of papermill waste on agronomic performance and soil fertility[J]. Plant and Soil, 2010,327(1/2):235-246.
[8] Ahmad M, Rajapaksha A U, Lim J E, et al. Biochar as a sorbent for contaminant management in soil and water:A review[J]. Chemosphere, 2014,99(3):19-33.
[9] 李江遐,吴林春,张军,等.生物炭修复土壤重金属污染的研究进展[J].生态环境学报,2015,24(12):2075-2081.
[10] Zhu Q, Wu J, Wang L, et al. Effect of biochar on heavy metal speciation of paddy soil[J]. Water Air and Soil Pollution, 2015,226(12):1-10.
[11] Ahmad M, Ara U, Al-Faraj A S, et al. Phosphorus-loaded biochar changes soil heavy metals availability and uptake potential of maize(Zea mays L.) plants[J]. Chemosphere, 2018,194:327-339.
[12] Ventura F, Salvatorelli F, Piana S, et al. The effects of biochar on the physical properties of bare soil[J]. Earth and Environmental Science Transactions of the Royal Society of Edinburgh, 2013,103(1):5-11.
[13] Tsai W, Liu S, Chen H, et al. Textural and chemical properties of swine-manure-derived biochar pertinent to its potential use as a soil amendment[J]. Chemosphere, 2012,89(2):198-203.
[14] Rees F, Simonnot M O, Morel J L. Short-term effects of biochar on soil heavy metal mobility are controlled by intra-particle diffusion and soil pH increase[J]. European Journal of Soil Science, 2014,65(1):149-161.
[15] Ali A, Di G, Zhang Y, et al. Using bamboo biochar with compost for the stabilization and phytotoxicity reduction of heavy metals in mine-contaminated soils of China[J]. Scientific Reports, 2017,7(1):2690-2701.
[16] 刘阿梅,向言词,田代科,等.生物炭对植物生长发育及重金属镉污染吸收的影响[J].水土保持学报,2013,27(5):193-198.
[17] Betencourt E, Duputel M, Colomb B, et al. Intercropping promotes the ability of durum wheat and chickpea to increase rhizosphere phosphorus availability in a low P soil[J]. Soil Biology & Biochemistry, 2012,46(1):181-190.
[18] Hu J, Chan P T, Wu F, et al. Arbuscular mycorrhizal fungi induce differential Cd and P acquisition by Alfred stonecrop(Sedum alfredii Hance)and upland kangkong(Ipomoea aquatica Forsk.) in an intercropping system:a section of agriculture, ecosystems & environment[J]. Applied Soil Ecology, 2013,63(12):29-35.
[19] Ye Z H, Yang Z Y, Chan G Y S, et al. Growth response of Sesbania rostrata and S. cannabina to sludge-amended lead/zinc mine tailings:a greenhouse study[J]. Environment International, 2001,26(5):449-455.
[20] 张达斌.黄土高原地区种植豆科绿肥协调土壤水分和氮素供应的效应及机理[D].陕西杨凌:西北农林科技大学,2016.
[21] Love A, Banerjee B D, Babu C R. Assessment of oxidative stress markers and concentrations of selected elements in the leaves of Cassia occidentalis growing wild on a coal fly ash basin[J]. Environmental Monitoring and Assessment, 2013,185(8):6553-6562.
[22] Love A, Tandon R, Banerjee B D, et al. Comparative study on elemental composition and DNA damage in leaves of a weedy plant species, Cassia occidentalis, growing wild on weathered fly ash and soil[J]. Ecotoxicology, 2009,18(7):791-801.
[23] 刘胜洪,张雅君,杨妙贤,等.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,2014,23(6):1042-1045.
[24] Wei S D, Chen R Y, Liao M M, et al. Antioxidant condensed tannins from Machilus pauhoi leaves[J]. Journal of Medicinal Plant Research, 2011,5(5):796-804.
[25] 郑绍鑫,蒋林,滕维超,等.刨花润楠对硝酸铅胁迫的生长和生理响应机制[J].林业工程学报,2015,29(3):25-30.
[26] 尚杰,耿增超,陈心想,等.施用生物炭对旱作农田土壤有机碳、氮及其组分的影响[J].农业环境科学学报,2015,34(3):509-517.
[27] Thies J E, Rillig M C. Characteristics of Biochar:Biological Properties[M]//Lehmann J, Joseph S. Biochar for Environmental Management:Science and Technology. London:Earthscan, 2009.
[28] Deng Y, Zhang T, Wang Q. Biochar Adsorption Treatment for Typical Pollutants Removal in Livestock Wastewater:A Review[M]//Huang W J. Engineering Applications of Biochar. London:IntechOpen, 2017.
[29] Probst A, Liu H, Fanjul M, et al. Response of Vicia faba L. to metal toxicity on mine tailing substrate:Geochemical and morphological changes in leaf and root[J]. Environmental and Experimental Botany, 2009,66(2):297-308.
[30] Liu X, Shen Y, Lou L, et al. Copper tolerance of the biomass crops Elephant grass(Pennisetum purpureum Schumach), Vetiver grass(Vetiveria zizanioides)and the upland reed(Phragmites australis)in soil culture[J]. Biotechnology Advances, 2009,27(5):633-640.
[31] 黄化刚,李廷强,朱治强,等.可溶性磷肥对重金属复合污染土壤东南景天提取锌/镉及其养分积累的影响[J].植物营养与肥料学报,2012,18(2):382-389.
[32] 程杰,高压军.镉毒害对小麦生理生态效应的研究进展[J].水土保持研究,2006,13(6):218-221,227.
[33] Han Y, Yuan H, Huang S, et al. Cadmium tolerance and accumulation by two species of Iris[J]. Ecotoxicology, 2007,16(8):557-563.
[34] 朱雪梅,林立金,杨远祥,等.锌铬复合胁迫对水稻植株碳氮代谢的影响[J].水土保持研究,2008,15(5):149-151.
[35] Major J, Rondon M, Molina D, et al. Maize yield and nutrition during 4 years after biochar application to a Colombian savanna oxisol[J]. Plant and Soil, 2010,333(1/2):117-128.
[36] 焦念元,宁堂原,尹飞,等.小麦晚套露地花生间作玉米高产高效栽培技术[J].作物杂志,2012(1):137-138.
[37] 黄超,刘丽君,章明奎.生物质炭对红壤性质和黑麦草生长的影响[J].浙江大学学报:农业与生命科学版,2011,37(4):439-445.
[38] 姜圆圆,郑毅,汤利,等.豆科禾本科作物间作的根际生物过程研究进展[J].农业资源与环境学报,2016,33(5):407-415.
[39] 朱彦霖,朱奕豪,张秀省.生物炭对百合生长发育的影响[J].北方园艺,2018(1):86-91.
[40] Guo X F, Li H S, Chen H Y. The effects of biochar and intercropping on the Cd, Cr and Zn speciation in soils and plant uptake by Machilus pauhoi[J]. Bulletin of Environmental Contamination & Toxicology, 2017,98(4):1-8.
[41] 王吉秀,湛方栋,李元,等.铅胁迫下小花南芥与玉米间作对根系分泌物有机酸的影响[J].中国生态农业学报,2016,24(3):365-372.

相似文献/References:

[1]文曼,郑纪勇.生物炭不同粒径及不同添加量对土壤收缩特征的影响[J].水土保持研究,2012,19(01):46.
 WEN Man,ZHENG Ji-yong.Effects of Different Sizes of Biochar and Their Additiont Rates on Soil Shrinkage Characteristics[J].Research of Soil and Water Conservation,2012,19(02):46.
[2]蔡崇法,王峰,丁树文,等.间作及农林复合系统中植物组分间养分竞争机理分析[J].水土保持研究,2000,7(03):219.
 CAI Chong-fa,WANG Feng,DING Shu-wen,et al.Nutrients Competition and Its Action Mechanism Between Component Parts in Inter-cropping Systems and Agroforestry[J].Research of Soil and Water Conservation,2000,7(02):219.
[3]成婧,吴发启,路培,等.玉米苜蓿间作的蓄水保土效益试验研究[J].水土保持研究,2012,19(03):54.
 CHENG Jing,WU Fa-qi,LU Pei,et al.Study on Benefits of Intercropping of Maize and Alfalfa on Soil and Water Conservation[J].Research of Soil and Water Conservation,2012,19(02):54.
[4]林超文,陈一兵,黄晶晶.中国四川间作地区作物高度、覆盖度和叶面积指数的时间变化[J].水土保持研究,2007,14(02):72.
 LIN Chao-wen,CHEN Yi-bing,HUANG Jing-jing.Temporal Variation of Plant Height, Plant Cover and Leaf Area Index in Inter-cropped Area of Sichuan, China[J].Research of Soil and Water Conservation,2007,14(02):72.
[5]慕宗昭,房用,杨继红,等.杨粮间作效益的研究[J].水土保持研究,2004,11(03):310.
 MU Zong-zhao,FANG Yong,YANG Ji-hong,et al.Studies on Intercropping Benefit of Poplar and Grain[J].Research of Soil and Water Conservation,2004,11(02):310.
[6]潘全良,陈坤,宋涛,等.生物炭及炭基肥对棕壤持水能力的影响[J].水土保持研究,2017,24(01):115.
 PAN Quanliang,CHEN Kun,SONG Tao,et al.Influences of Biochar and Biochar-Based Compound Fertilizer on Soil Water Retention in Brown Soil[J].Research of Soil and Water Conservation,2017,24(02):115.
[7]王彤彤,翟军海,何欢,等.BP神经网络和SVM模型对施加生物炭土壤水分预测的适用性[J].水土保持研究,2017,24(03):86.
 WANG Tongtong,ZHAI Junhai,HE Huan,et al.Applicability of BP Neural Network Model and SVM Model to Predicting Soil Moisture Under incorporation of Biochar into Soils[J].Research of Soil and Water Conservation,2017,24(02):86.
[8]陈小强,范茂攀,王自林,等.不同种植模式对作物根系固土拉力特性的影响[J].水土保持研究,2017,24(05):144.
 CHEN Xiaoqiang,FAN Maopan,WANG Zilin,et al.Effect of Crop Root on Soil Strength in Different Cropping Patterns[J].Research of Soil and Water Conservation,2017,24(02):144.
[9]高莹,吴普特,赵西宁,等.春小麦/春玉米间作模式光温环境特征研究[J].水土保持研究,2015,22(03):163.
 GAO Ying,WU Pute,ZHAO Xining,et al.Characteristics of Light Environment and Soil Temperature in the Spring Wheat/Spring Maize Intercropping System[J].Research of Soil and Water Conservation,2015,22(02):163.
[10]李文娟,颜永毫,郑纪勇,等.生物炭对黄土高原不同质地土壤中NO3-N运移特征的影响[J].水土保持研究,2013,20(05):60.
 LI Wen-juan,YAN Yong-hao,ZHENG Ji-yong,et al.Effect of Biochar on the Transfer of Nitrate in Three Different Soils on the Loess Plateau[J].Research of Soil and Water Conservation,2013,20(02):60.

备注/Memo

收稿日期:2018-05-15;改回日期:2018-06-04。
基金项目:西华师范大学博士启动项目(412666);国家高新技术研究发展(863)计划项目子课题(2013AA102402)
作者简介:郭雄飞(1987-),男,湖北黄冈人,博士,讲师,主要从事生态修复研究。E-mail:gxfcwnu@qq.com

更新日期/Last Update: 1900-01-01