Soil amendments for immobilization of potentially toxic elements in contaminated soils: A critical review

Почвенные мелиоранты для иммобилизации потенциально токсичных элементов в загрязнённых почвах: критический обзор
Jörg Rinklebe, Nanthi Bolan, Daniel C.W. Tsang, Yong Sik Ok, Deyi Hou, Sabry M. Shaheen, Kumuduni Niroshika Palansooriya, Season S. Chen, Yohey Hashimoto
2019-11-12

PTE immobilizationbiocharpotentially toxic elementssoil amendmentssoil remediation
Soil contamination by potentially toxic elements (PTEs) has led to adverse environmental impacts. In this review, we discussed remediation of PTEs contaminated soils through immobilization techniques using different soil amendments with respect to type of element, soil, and amendment, immobilization efficiency, underlying mechanisms, and field applicability. Soil amendments such as manure, compost, biochar, clay minerals, phosphate compounds, coal fly ash, and liming materials are widely used as immobilizing agents for PTEs. Among these soil amendments, biochar has attracted increased interest over the past few years because of its promising surface properties. Integrated application of appropriate amendments is also recommended to maximize their use efficiency. These amendments can reduce PTE bioavailability in soils through diverse mechanisms such as precipitation, complexation, redox reactions, ion exchange, and electrostatic interaction. However, soil properties such as soil pH, and clay, sesquioxides and organic matter content, and processes, such as sorption/desorption and redox processes, are the key factors governing the amendments' efficacy for PTEs immobilization in soils. Selecting proper immobilizing agents can yield cost-effective remediation techniques and fulfill green and sustainable remediation principles. Furthermore, long-term stability of immobilized PTE compounds and the environmental impacts and cost effectiveness of the amendments should be considered before application.
1
Amendments immobilize potentially toxic elements through precipitation, complexation, redox reactions, ion exchange, and electrostatic interactions.
2
Biochar has received increasing attention because its favorable surface properties support potentially toxic element immobilization.
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Immobilization efficacy depends strongly on soil pH, clay, sesquioxide and organic matter contents, as well as sorption-desorption and redox processes; long-term stability, environmental impacts, and cost must guide amendment selection.
4
Manure, compost, biochar, clay minerals, phosphate compounds, coal fly ash, and liming materials can reduce potentially toxic element bioavailability in contaminated soils.
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The review evaluates soil amendments for immobilizing potentially toxic elements across different elements, soil types, efficiencies, mechanisms, and field applications.

Contaminated soils polluted with potentially toxic elements (PTEs)

The immobilization efficiency, mechanisms, governing factors, field applicability, long-term stability, environmental impacts, and cost-effectiveness of soil amendments for reducing PTE bioavailability

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2019-11-12
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Jörg Rinklebe
Nanthi Bolan
Daniel C.W. Tsang
Yong Sik Ok
Deyi Hou
Sabry M. Shaheen
Kumuduni Niroshika Palansooriya
Season S. Chen
Yohey Hashimoto
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