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April 3, 20260 citationsOpen Access

Basalt amendment as a key driver for carbon sequestration

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SSSameh ShaddadHEHend ElsaweyNINadeen Ibrahim

Key Points

  • The aim is to explore basalt amendment as a method for enhancing carbon sequestration and soil nutrient levels.
  • Conducted field trials on basalt and compost mixtures at Sekem Wahat farm across 12 plots.
  • Applied basalt at concentrations of 5wt% and 27wt% relative to compost at a rate of 48 tons per hectare per season.
  • Analyzed soil nutrient levels and wheat productivity over two years.
  • Wheat productivity increased by over 15% with basalt application compared to conventional methods.
  • Soil nutrient analyses revealed potassium levels reaching 500 mg/kg and phosphorus levels at 70 mg/kg.
  • Carbon dioxide removal potential estimated between –1.4 and –10 Mg CO₂e per hectare per year with optimal basalt application.
  • Production costs were reduced by 15% alongside a 15% increase in soil organic matter content.

Abstract

Rising atmospheric CO₂ and climate change require carbon sequestration alongside emission reductions. Soil sequestration is enhanced by basalt amendment, which accelerates mineral weathering, stabilizes carbon in soils, and reduces water usage. Enhanced rock weathering is commonly known in the field of carbon storage, being considered a source of nutrients and a tool for C-sequestration. At the Sekem Wahat farm, researchers tested various basalt and compost amendments across 12 plots. The mixtures included basalt concentrations of 27wt% and 5wt% relative to compost, applied at a rate of 48 tons of compost per hectare and season. Results showed that wheat productivity increased by more than 15% following basalt application compared to conventional management. Soil analyses conducted over two years showed a substantial rise in nutrient availability, with potassium reaching 500 mg kg-1 and phosphorus reaching 70 mg kg-1, indicating significant soil fertility enrichment. In terms of climate benefits, preliminary assessments suggest a carbon dioxide removal potential ranging from –1.4 to –10 Mg CO₂e per hectare per year at a basalt application rate of 35 Mg ha -1 yea -1 r. Additionally, operational performance improved, with a 15% reduction in production costs and a 15% increase in soil organic matter content.

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Cite This Study

Shaddad et al. (2026) studied this question.

synapsesocial.com/papers/69cf5cd15a333a821460a69chttps://doi.org/10.5281/zenodo.19352217
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