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April 15, 2026Agriculture0 citationsOpen Access

Challenges in Remediation of Hg-Contaminated Agricultural Soils: A Literature Review

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MȘMarin ȘenilăCBCristina Maria BălgărădeanLȘLacrimioara Șenilă

Key Points

  • This review aims to summarize key remediation strategies for mercury-contaminated agricultural soils and assess their effectiveness.
  • Literature review of remediation techniques for mercury in soils.
  • Analysis of chemical, biological, and physical remediation strategies.
  • Discussion of plant species and microorganisms for Hg remediation.
  • Evaluation of amendments like biochar and nanomaterials.
  • Emerging technologies effectively immobilize mercury and reduce its bioavailability.
  • Ex situ methods are labor-intensive and can harm soil quality.
  • In situ techniques preserve soil structure and biota.
  • Effective remediation can enable safe food crop production if bioavailable Hg is reduced.

Abstract

Mercury (Hg) is a ubiquitous element in the environment that may pose a threat to human health due to its toxicity, high mobility through the food chain, and long-lasting persistence. Organic Hg compounds, particularly methylmercury, are more toxic than inorganic mercury due to their easy absorption and persistent retention within the organism. Although natural attenuation can occur in soil through various processes, excessive levels of Hg cause pollution that can adversely affect agricultural soil, making remediation necessary to either remove or stabilize Hg within the soil. This review primarily aims to summarize key remediation strategies—chemical, biological, and physical—developed in recent years for agricultural soil remediation. It discusses the influencing factors, advantages, limitations, mechanisms, and practical applications of these soil remediation technologies. The published literature focuses on identifying plant species and microorganisms capable of remediating Hg-contaminated soils. Emerging amendments, such as biochar and nanomaterials, have been tested for treating mercury (Hg)-polluted soils primarily by immobilizing mercury and reducing its bioavailability and methylation. Ex situ remediation technologies are effective for Hg-contaminated soils but are often costly, labor-intensive, detrimental to soil quality, and generate hazardous secondary waste. In contrast, in situ technologies treat Hg directly within the soil, preserving the soil matrix and its biota. According to the literature, remediation of Hg-contaminated agricultural soils can be compatible with food crop production only if the bioavailable Hg fraction is sufficiently reduced and crop uptake remains below food safety limits. The gap between laboratory trials and actual field applications in Hg-contaminated soil remediation mainly arises from differences in scale, complexity, and the uncertainty of real-world conditions, which often reduce the efficiency and predictability of treatments. This review aims to provide a practical reference for improving the effective remediation of Hg-contaminated soils in the future.

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Cite This Study

Șenilă et al. (2026) studied this question.

synapsesocial.com/papers/69df2bcae4eeef8a2a6b0b77https://doi.org/10.3390/agriculture16080849
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