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May 9, 2026Sustainability0 citationsOpen Access

Sustainable and Eco-Friendly Remediation of Heavy Metal-Contaminated Soils Using Malic Acid Washing

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ISIoana Monica SurVPV. C. ProdanAHAndreea Hegyi

Key Points

  • This study aims to evaluate the effectiveness of malic acid in removing heavy metal contaminants from soil.
  • Two soil types treated with 10% malic acid at solid/liquid ratios of 1:5 and 1:10.
  • Washing durations were set at 2, 4, 6, and 8 hours for efficiency assessment.
  • FTIR and UV–Vis analyses conducted to examine changes in soil composition.
  • Cadmium removal rates ranged from 26% to 55%; zinc removal was between 10% to 25%.
  • Chromium removal efficiency reached up to 90%, while copper extraction varied from 5% to 45%.
  • Notable mobilization of nitrogen and potassium occurred, with phosphorus levels remaining stable.

Abstract

Soil contamination by heavy metals is a significant sustainability and ecological issue, impacting on the health of ecosystems and groundwater. This study assessed the efficacy of malic acid as a biodegradable and environmentally benign agent for the remediation of soils contaminated with cadmium, chromium, copper, and zinc. Two soils with contrasting textures were treated with a 10% malic acid solution at solid/liquid ratios of 1:5 and 1:10 for contact times of 2, 4, 6, and 8 h. The extraction efficiency varied depending on metal type, soil texture, and washing conditions. Cadmium removal ranged from 26% to 55%, zinc removal ranged from 10% to 25%, while copper showed variable extraction (5–45%) depending on initial soil concentration. Chromium exhibited the highest removal efficiency (30–90%), quantified as total chromium; however, the absence of speciation analysis (Cr(III)/Cr(VI)) represents a key limitation and may affect the interpretation of the removal performance. FTIR and UV–Vis analyses confirmed the formation of metal–carboxylate complexes and changes in soil functional groups during the washing process. In addition, significant mobilization of nitrogen and potassium was observed, whereas phosphorus remained relatively stable. The results highlight the influence of soil texture and multi-metal interactions on malic acid washing efficiency and provide a laboratory-scale environmental assessment of malic acid as a sustainable remediation alternative for soil remediation, while emphasizing the need for further evaluation regarding chromium speciation and post-treatment soil quality and sustainability impacts.

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Cite This Study

Sur et al. (2026) studied this question.

synapsesocial.com/papers/69fed153b9154b0b8287899bhttps://doi.org/10.3390/su18104627
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