In situ phytoremediation of heavy metal–contaminated soil and groundwater: a green inventive approach

被引:0
作者
Deep Shikha
Prasoon Kumar Singh
机构
[1] Indian Institute of Technology (IIT; Indian School of Mines),Department of Environmental Science & Engineering
来源
Environmental Science and Pollution Research | 2021年 / 28卷
关键词
Soil; Groundwater; Heavy metals; In situ phytoremediation; Health risks;
D O I
暂无
中图分类号
学科分类号
摘要
The heavy metal contamination of soil and groundwater is a serious threat to environment worldwide. The survival of human being primarily relies upon soil and groundwater sources. Therefore, the remediation of heavy metal-contaminated soil and groundwater is a matter of utmost concern. Heavy metals are non-degradable and persist in the environment and subsequently contaminate the food chain. Heavy metal pollution puts a serious impact on human health and it adversely affects our physical body. Although, numerous in situ conventional technologies have been utilized for the treatment purpose, but most of the techniques have some limitations such as high cost, deterioration of soil properties, disturbances to soil native flora and fauna and intensive labour. Despite that, in situ phytoremediation is a cost-effective, eco-friendly, solar-driven and novel approach with significant public acceptance. The past research reflects rare discussion addressing both (heavy metal in situ phytoremediation of soil and groundwater) in one platform. The present review article covers both the concepts of in situ phytoremediation of soil and groundwater with major emphasis on health risks of heavy metals, enhanced integrated approaches of in situ phytoremediation, mechanisms of in situ phytoremediation along with effective hyperaccumulator plants for heavy metals remediation, challenges and future prospects.
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页码:4104 / 4124
页数:20
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  • [1] Abdel Latef AAH(2018)Titanium dioxide nanoparticles improve growth and enhance tolerance of broad bean plants under saline soil conditions Land Degrad Dev 29 1065-1073
  • [2] Srivastava AK(2016)Human health risks from heavy metals in fish of Buriganga river, Bangladesh Springer Plus 5 1-12
  • [3] El-sadek MSA(2013)Phytoremediation of heavy metals—concepts and applications Chemosphere 91 869-881
  • [4] Kordrostami M(2008)Evaluation of various chemical extraction methods to estimate plant-available arsenic in mine soils Chemosphere 70 1459-1467
  • [5] Tran LSP(2016)Germination and early plant development of ten plant species exposed to titanium dioxide and cerium oxide nanoparticles Environ Toxicol Chem 35 2223-2229
  • [6] Ahmed MK(2018)Nanobrass Cu Zn nanoparticles as foliar spray nonphytotoxic fungicides ACS Appl Mater Interfaces 10 4450-4461
  • [7] Baki MA(2007)Perspectives of bacterial ACC deaminase in phytoremediation Trends Biotechnol 25 356-362
  • [8] Kundu GK(2019)Integrated remediation processes towards heavy metal removal/recovery from various environments-a review Front Environ Sci 7 66-27
  • [9] Islam MS(2015)Effect of zinc and glucosinolates on nutritional quality of Sci Total Environ 511 21-727
  • [10] Islam MM(2019) and infestation by Ecotoxicol Environ Saf 174 714-3038