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March 19, 2026Sustainability2 citationsOpen Access

Cannabis sativa L. Phytoremediation of Heavy Metal Soil Contamination, Followed by Biomass Valorization

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GPGiulio PicchiUniversity of PaviaACArianna CallegariACAndrea G. CapodaglioUniversity of Pavia

Key Points

  • The central aim is to evaluate the ability of Cannabis sativa L. to remediate heavy metal-contaminated soils and assess biomass valorization through biochar production.
  • Implemented phytoremediation using Cannabis sativa var. ‘Carmagnola’ across four growth substrates.
  • Measured heavy metal uptake from soil for Pb, Cr, Cu, and Ni after four months of growth.
  • Conducted pyrolysis on the harvested biomass to produce biochar and evaluated its heavy metal content.
  • Heavy metal removal efficiencies varied between 55-75% for Cr, 60-78% for Ni, 32-86% for Cu, and 43-84% for Pb.
  • Biochar produced from biomass contained heavy metal levels below EU thresholds for agricultural use.
  • The substrate composition influenced heavy metal accumulation, with less compact mixed substrates yielding higher uptake.

Abstract

Soil heavy metal contamination poses a major environmental threat, negatively impacting ecosystems, agricultural productivity, and human health. Phytoremediation offers eco-sustainable alternatives to conventional remediation techniques by employing plant species capable of extracting and stabilizing pollutants. This study assesses the potential of Cannabis sativa L. var. ‘Carmagnola’ for the remediation of Pb, Cr, Cu, and Ni from four different growth substrates. This species was selected for its high biomass yield, tolerance to toxic environments, and capacity for heavy metal accumulation. Experimental results showed that the composition of the growing substrate significantly affected HM uptake, with higher accumulation occurring in less compact mixed substrates. HM removal from contaminated growth substrates varied between 55 and 75% for Cr, 60–78% for Ni, 32–86% for Cu and 43–84% for Pb after four months of growth in a greenhouse environment. In addition to pollutant removal efficiency, the study explored thermochemical harvested biomass post-processing via pyrolysis in order to produce biochar, a material with recognized agronomic beneficial properties and positive environmental value. Biochar generated from harvested biomass after phytoremediation tests showed residual HM content lower than the applicable EU thresholds for agricultural soil amendment. Integrating bioremediation with biochar production can promote a circular bioeconomy approach to environmental restoration, by transforming contaminated residual biomass into a useful resource rather than waste. These findings support the feasibility potential of coupling C. sativa phytoremediation and biochar production as an environmentally sustainable strategy for large-scale remediation of heavy metal-contaminated soils.

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Cite This Study

Picchi et al. (2026) studied this question.

synapsesocial.com/papers/69bb926a496e729e6297fa79https://doi.org/10.3390/su18062926
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1PHYTOREMEDIATION OF PB AND CD CONTAMINATED SOILS USING MEDICAGO SATIVA2026
  2. 2Phytoremediation and Compost-Assisted Phytoremediation of a Heavy-Metal-Contaminated Soil: A Sustainable Approach Using Waste-Derived Amendments2026
  3. 3PHYTOREMEDIATION POTENTIAL OF PLANTS IN THE UPTAKE AND STABILIZATION OF HEAVY METALS: A REVIEW2026
  4. 4Use of Cannabis sativa L. for Improving Cadmium-Contaminated Mediterranean Soils—Effect of Mycorrhizal Colonization on Phytoremediation Capacity2024 · 4 citations
  5. 5Assessing Environmental Sustainability of Phytoremediation to Remove Copper from Contaminated Soils2024 · 7 citations