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利用增强型纳米零价铁修复污染土壤。

Remediation of contaminated soils by enhanced nanoscale zero valent iron.

机构信息

College of Environmental Science and Engineering, Hunan University, Changsha 410082, PR China; Key Laboratory of Environmental Biology and Pollution Control, Hunan University, Ministry of Education, Changsha 410082, PR China.

College of Environmental Science and Engineering, Hunan University, Changsha 410082, PR China; Key Laboratory of Environmental Biology and Pollution Control, Hunan University, Ministry of Education, Changsha 410082, PR China.

出版信息

Environ Res. 2018 May;163:217-227. doi: 10.1016/j.envres.2018.01.030. Epub 2018 Feb 22.

Abstract

The use of nanoscale zero valent iron (nZVI) for in situ remediation of soil contamination caused by heavy metals and organic pollutants has drawn great concern, primarily owing to its potential for excellent activity, low cost and low toxicity. This reviews considers recent advances in our understanding of the role of nZVI and enhanced nZVI strategy in the remediation of heavy metals and persistent organic contaminants polluted soil. The performance, the migration and transformation of nZVI affected by the soil physical and chemical conditions are summarized. However, the addition of nZVI inevitably disturbs the soil ecosystem, thus the impacts of nZVI on soil organisms are discussed. In order to further investigate the remediation effect of nZVI, physical, chemical and biological method combination with nZVI was developed to enhance the performance of nZVI. From a high efficient and environmentally friendly perspective, biological method enhanced nZVI technology will be future research needs. Possible improvement of nZVI-based materials and potential areas for further applications in soil remediation are also proposed.

摘要

纳米零价铁(nZVI)用于原位修复重金属和有机污染物污染的土壤引起了极大的关注,主要是因为其具有优异的活性、低成本和低毒性。本综述考虑了我们对 nZVI 的作用以及增强型 nZVI 策略在修复重金属和持久性有机污染物污染土壤方面的最新进展。总结了 nZVI 的性能、受土壤物理化学条件影响的迁移转化。然而,nZVI 的添加不可避免地会干扰土壤生态系统,因此讨论了 nZVI 对土壤生物的影响。为了进一步研究 nZVI 的修复效果,开发了物理、化学和生物方法与 nZVI 相结合,以增强 nZVI 的性能。从高效和环保的角度来看,生物强化 nZVI 技术将是未来的研究需求。还提出了基于 nZVI 的材料的可能改进和在土壤修复中进一步应用的潜在领域。

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