Remediation of mercury contaminated soil, water, and air: A review of emerging materials and innovative technologies

Ремедиация загрязненных ртутью почвы, воды и воздуха: обзор перспективных материалов и инновационных технологий
Jörg Rinklebe, Yong Sik Ok, Liuwei Wang, Deyi Hou, Filip Tack, David O’Connor, Yining Cao
2019-11-11

AdsorptionMercury remediationMetal-organic frameworksNanomaterialsPhytoremediation
Mercury contamination in soil, water and air is associated with potential toxicity to humans and ecosystems. Industrial activities such as coal combustion have led to increased mercury (Hg) concentrations in different environmental media. This review critically evaluates recent developments in technological approaches for the remediation of Hg contaminated soil, water and air, with a focus on emerging materials and innovative technologies. Extensive research on various nanomaterials, such as carbon nanotubes (CNTs), nanosheets and magnetic nanocomposites, for mercury removal are investigated. This paper also examines other emerging materials and their characteristics, including graphene, biochar, metal organic frameworks (MOFs), covalent organic frameworks (COFs), layered double hydroxides (LDHs) as well as other materials such as clay minerals and manganese oxides. Based on approaches including adsorption/desorption, oxidation/reduction and stabilization/containment, the performances of innovative technologies with the aid of these materials were examined. In addition, technologies involving organisms, such as phytoremediation, algae-based mercury removal, microbial reduction and constructed wetlands, were also reviewed, and the role of organisms, especially microorganisms, in these techniques are illustrated.
1
Biological technologies—including phytoremediation, algae-based removal, microbial reduction, and constructed wetlands—are reviewed as approaches for mercury remediation.
2
Mercury contamination from industrial activities, including coal combustion, poses toxicity risks to humans and ecosystems across soil, water, and air.
3
Microorganisms play an important role in biological mercury-removal techniques, particularly through microbial reduction processes.
4
The review evaluates emerging mercury-remediation materials, including carbon nanotubes, nanosheets, magnetic nanocomposites, graphene, biochar, MOFs, COFs, LDHs, clay minerals, and manganese oxides.
5
These materials support remediation mechanisms based on adsorption/desorption, oxidation/reduction, and stabilization/containment of mercury.

Mercury-contaminated environmental media (soil, water, and air)

the performance and mechanisms of emerging materials and innovative biological and physicochemical technologies for mercury remediation, including mercury removal, transformation, stabilization, and containment

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2019-11-11
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Authors
Jörg Rinklebe
Yong Sik Ok
Liuwei Wang
Deyi Hou
Filip Tack
David O’Connor
Yining Cao
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