Hemp: Nature's Solution for Cleaning Soil and Making Biofuel

Field-grown hemp treated with humic/fulvic acids and arbuscular mycorrhizal fungi for phytomanaging a metal-contaminated agricultural soil.

International journal of phytoremediation • • Moderately Relevant
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AI Summary

In a groundbreaking field study, researchers explored Cannabis sativa as a powerful solution for environmental cleanup and renewable energy production. The research focused on using industrial hemp to manage metal-contaminated agricultural soils, demonstrating the plant's remarkable ability to absorb and reduce metal concentrations while simultaneously producing valuable biomass for biofuel production.

The two-year field trial revealed impressive results, with hemp producing 10.7-14.5 tons of dry biomass per hectare despite challenging drought conditions. Most notably, the plants effectively accumulated and removed significant quantities of heavy metals, including 869 g/ha of zinc, 230 g/ha of lead, and 9.9 g/ha of cadmium. By the second year, soil metal concentrations dramatically decreased by 79-96%, showcasing hemp's potential as a phytoremediation strategy.

The study's most exciting finding is hemp's dual-purpose potential: cleaning contaminated soil while generating renewable energy. Researchers estimated a bioethanol yield of 3,851-6,481 liters per hectare, highlighting hemp's unique ability to simultaneously address environmental challenges and provide sustainable energy solutions. This research underscores the versatility of Cannabis sativa beyond its well-known medicinal and industrial applications.

📄 Original Abstract

Industrial hemp offers several advantages for phytomanaging metal(loid)-contaminated soils as it can provide valuable biomass notably for bioenergy while accumulating some metals (i.e., Cd and Zn) in its shoots. In a previous pot study humic/fulvic acids (HFA) incorporated into the soil with arbuscular mycorrhizal fungi (AMF) enhanced hemp growth. This study assessed the biostimulant effect of HFA, alone or paired with AMF (HFAxAMF), on the shoot yield and shoot Cd, Pb and Zn uptakes in a 2-year field trial in view of producing clean, renewable liquid biofuels. The trial (0.07 ha) was carried out at a contaminated agricultural field in a randomized split-plot design (nine blocks). Cannabis sativa L. was sown at a density of 173 000 plants ha-1. Effects of HFA and HFAxAMF treatments on the behavior of metals and plants were compared to an unamended one. Hemp produced on average 10.7 (year 1)-14.5 (year 2) t DW ha-1 despite a severe drought in year 1. Neither HFA nor HFAxAMF treatments enhanced shoot yield. Shoot Cd, Pb and Zn uptakes reached 9.9, 230, and 869 g ha-1 year-1, respectively. In year 2, shoot Cd uptake improved under all treatments and the 0.01 M Ca(NO3)2-extractable soil Cd, Pb and Zn concentrations at harvest decreased by 95, 79 and 96%, respectively. Hemp was a relevant plant species for phytomanaging this metal-contaminated soil under current climatic constraints. The potential bioethanol yield was estimated in the 3851-6481 L ha-1 range. Overall, hemp can simultaneously reduce soil metal availability while producing a biomass convertible into liquid biofuels. This highlights its strong potential as a dual-purpose crop for sustainable and progressive phytoremediation and renewable energy production. This study investigates the effects of humic/fulvic acids (HFA), applied alone or paired with AMF (HFAxAMF) on Cd, Pb and Zn uptake by hemp shoots and shoot yield in a 2-year field trial. The work aimed at producing a biomass usable for renewable liquid biofuels, while using hemp for managing contaminated soils under current climatic conditions in the vicinity of the former Metaleurop smelter.

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