Remediation of mercury-contaminated soils and sediments using biochar: a critical review

Ремедиация почв и донных отложений, загрязнённых ртутью, с использованием биоугля: критический обзор
Qian Yang, Yongjie Wang, Huan Zhong
2021-02-22

Hg biogeochemistrybiochar amendmentin situ remediationmercury-contaminated soilsmethylmercury bioavailability
Abstract The transformation of mercury (Hg) into the more toxic and bioaccumulative form methylmercury (MeHg) in soils and sediments can lead to the biomagnification of MeHg through the food chain, which poses ecological and health risks. In the last decade, biochar application, an in situ remediation technique, has been shown to be effective in mitigating the risks from Hg in soils and sediments. However, uncertainties associated with biochar use and its underlying mechanisms remain. Here, we summarize recent studies on the effects and advantages of biochar amendment related to Hg biogeochemistry and its bioavailability in soils and sediments and systematically analyze the progress made in understanding the underlying mechanisms responsible for reductions in Hg bioaccumulation. The existing literature indicates (1) that biochar application decreases the mobility of inorganic Hg in soils and sediments and (2) that biochar can reduce the bioavailability of MeHg and its accumulation in crops but has a complex effect on net MeHg production. In this review, two main mechanisms, a direct mechanism (e.g., Hg-biochar binding) and an indirect mechanism (e.g., biochar-impacted sulfur cycling and thus Hg-soil binding), that explain the reduction in Hg bioavailability by biochar amendment based on the interactions among biochar, soil and Hg under redox conditions are highlighted. Furthermore, the existing problems with the use of biochar to treat Hg-contaminated soils and sediments, such as the appropriate dose and the long-term effectiveness of biochar, are discussed. Further research involving laboratory tests and field applications is necessary to obtain a mechanistic understanding of the role of biochar in reducing Hg bioavailability in diverse soil types under varying redox conditions and to develop completely green and sustainable biochar-based functional materials for mitigating Hg-related health risks.
1
Biochar application decreases the mobility of inorganic mercury in contaminated soils and sediments, supporting its use for in situ remediation.
2
Biochar reduces methylmercury bioavailability and accumulation in crops, although its effect on net methylmercury production is complex.
3
Important uncertainties remain regarding appropriate biochar dosage, long-term remediation effectiveness, and performance across soil types and redox conditions.
4
Laboratory and field research is needed to clarify mechanisms and develop sustainable biochar-based materials for reducing mercury-related health risks.
5
Mercury-risk reduction occurs through direct mechanisms such as mercury–biochar binding and indirect mechanisms involving biochar-driven sulfur cycling and altered mercury–soil interactions under redox conditions.

Mercury-contaminated soils and sediments treated with biochar

The effects and mechanisms of biochar amendment on mercury biogeochemistry, bioavailability, mobility, methylmercury production, and bioaccumulation

Publication Details
Publication Date
2021-02-22
Journal
Publisher
ISSN
Cited by
75
Access Type
Author Information
Authors
Qian Yang
Yongjie Wang
Huan Zhong
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%