[1]
Kimpe DCR, Morel J L. Urban soil management: a growing concern [J]. Soil Science, 2000, 165 (1): 31 – 40.
DOI: 10.1097/00010694-200001000-00005
Google Scholar
[2]
Zhang Ganlin, Zhu Yongguan, Fu Bojie. Quality changes of soils in urban and suburban areas and its eco-environ ornamental impacts[J] Acta Ecologica Sinica 2003, 23 (3): 539–546.
Google Scholar
[3]
Zhang Jiaen, Xu Qi. The formation of city soil characteristics and protection [J] Soils, 2001, 33 (1): 47–51.
Google Scholar
[4]
Lu Ying, Gong Zitong, Zhang Ganlin. A preliminary study on the characteristics of soil in Nanjing city and its classification[J]Soils, 2001, 33 (1): 47–51.
Google Scholar
[5]
Ge Yang, Liang Shuxuan, Sun Hanwen. Research Progress in Analysis and Morphological analysis of heavy metal components in atmospheric aerosol[J]The Administration and Technique of Environmental Monitoring, 2007(6).
Google Scholar
[6]
Li Ruiping, Wang Anjian, Cao Dianhua. Research on the distribution characteristic of Zn, Cd in the soil of Jinding Pb-Zn deposit, Lanping county[J]. Geological Review, 2009(1).
Google Scholar
[7]
Yang Xiaoyan, Hou Qingye, Yang Zhongfang. Form distribution and influencing factor of Pb in yellow soil profiles from Chengdu economic area [J]. Geoscience, 2008(6).
Google Scholar
[8]
Kuperman R G, Carreiro M M. Soil heavy metal concentrations, microbial biomass and enzyme activities in a contaminated grassland ecosystem [J]. Soil Biology and Biochemistry, 29(2): 179-190.
DOI: 10.1016/s0038-0717(96)00297-0
Google Scholar
[9]
Kelly J, Häggblom M, Tate R L. 1999. Changes in soil microbial communities over time resulting from one time application of zinc: a laboratory microcosm study [J]. Soil Biology and Biochemistry, 31(10): 1455 - 1465.
DOI: 10.1016/s0038-0717(99)00059-0
Google Scholar
[10]
Feris K, Ramsey P, Frazar C, et al. 2003. Differences inhyporheic-zone microbial community structure along a heavy-metal contamination gradient [J]. Applied and Environmental Microbiology, 69(9): 5563 - 5573.
DOI: 10.1128/aem.69.9.5563-5573.2003
Google Scholar
[11]
Yao H, Xu J, Huang C. 2003. Substrate utilization pattern, biomass and activity of microbial communities in a sequence of heavy metal-polluted paddy soils [J]. Geoderma, 115(1-2): 139 - 148.
DOI: 10.1016/s0016-7061(03)00083-1
Google Scholar
[12]
Becker J M, Parkin T, Nakatsu C H, et al. 2006. Bacterial activity, community structure, and centimeter-scale spatial heterogeneity in contaminated soil [J]. Microbial Ecology, 51(2): 220 - 231.
DOI: 10.1007/s00248-005-0002-9
Google Scholar
[13]
Hassen A, Jedidi N, Cherif M, et al. 1998. Mineralization of nitrogen in a clayey loamy soil amended with organic wastes enriched with Zn, Cu and Cd [J]. Bioresource Technology, 64(1): 39 - 45.
DOI: 10.1016/s0960-8524(97)00153-3
Google Scholar
[14]
Chen Huaiman. Heavy metal pollution in soil plant system [M] Beijing: Science and Technology Press, (1996).
Google Scholar
[15]
Dai Shugui, Liu Xiaoqin, Xu He. Advances in phytoremediation of contaminated soil [J] Shanghai Environmental Science, 1998, 17(9): 25-27.
Google Scholar
[16]
Shen Dezhong. Phytoremediation of contaminated soil [J] Chinese Journal of Ecology, 1998, 17(2): 59-64.
Google Scholar
[17]
Wang Qingren, Cui Yanshan, Dong Yiting. Phytoremediation-an effective approach of heavy metal cleanup form contaminated soil [J]. Acta Ecologica sinica, 2001, 21(2): 326-331.
Google Scholar
[18]
Shen Zhengguo, Chen Huaiman. Study on bioremediation of heavy metal polluted soils [J]. Journal of Ecology and Rural Environment, 2000, 16(2): 39-44.
Google Scholar
[19]
Jiang Xianjun, Luo Yongming, Zhao Qiguo. Study on phytoremediation of heavy metal polluted soils-cadmium and zinc uptake and accumulation by indian mustard (brassica juncea) [J]. Soils, 2000, 32(2): 71-78.
Google Scholar
[20]
Sang Weilian, Kong Fanxiang. Research advances in phytoremediation [J]. Advances in Environmental Science, 1999, 7(3): 40-44.
Google Scholar