From Waste to Soil Fertility: Comparative Assessment of Anaerobic Digestion and Aerobic Composting in Agricultural Sustainability

Authors

  • Tarik Foughal Hassan II University of Casablanca (ROR: https://ror.org/001q4kn48), Laboratory of Biotechnology, Agri-Food, Materials and Environment, Team: Biotechnologies, Resource Valorization, Quality, Health and Ecotoxicology, Faculty of Science and Technology Mohammedia, BP 146, Mohammedia 20650, Morocco
  • Bouchaib Bahlaouan Higher Institutes of the Nursing Professions and Techniques of Health (ISPITS Casa) (ROR: https://ror.org/01wcdkp35), Laboratory of Care, Health and Sustainable Development 2S2D, Casablanca 22500, Morocco
  • Meriem Mahmoudi Hassan II University of Casablanca (ROR: https://ror.org/001q4kn48), Laboratory of Biotechnology, Agri-Food, Materials and Environment, Team: Biotechnologies, Resource Valorization, Quality, Health and Ecotoxicology, Faculty of Science and Technology Mohammedia, BP 146, Mohammedia 20650, Morocco
  • Nadia Boutaleb Hassan II University of Casablanca (ROR: https://ror.org/001q4kn48), Laboratory of Biotechnology, Agri-Food, Materials and Environment, Team: Biotechnologies, Resource Valorization, Quality, Health and Ecotoxicology, Faculty of Science and Technology Mohammedia, BP 146, Mohammedia 20650, Morocco

DOI:

https://doi.org/10.63095/NBSEH.26.345288

Keywords:

Organic waste, Anaerobic digestion, Sustainable soil fertility

Abstract

The increase in organic waste production, demographic growth, urbanization, and the intensification of agricultural activities have increased the need for sustainable nutrient recycling. Biological treatment of organic waste, represented by composting and anaerobic digestion, is one of the most effective solutions. Compost and digestate are the main products of these processes. These materials meet circular economy principles, though their chemical characteristics and agricultural functions differ. Digestate is rich in minerals readily assimilated by plants, providing rapid nutrient supply. Compost releases nutrients more slowly and contains stable organic matter that improves soil fertility and structure over time. If appropriate agricultural practices are not applied, rapid nutrient availability may lead to risks such as nutrient loss, salinity, or plant phytotoxicity. Compost and digestate are complementary. Their combined use can balance rapid plant nutrition with long-term improvements in soil’s physical and chemical properties and reduce reliance on mineral fertilizers.

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References

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Organic waste management is necessary.  Digestates and compost are very valuable products. Compost, which is the output of the aerobic composting process, gives a final material rich in stable organic matter and humic compounds. Digestate, a byproduct of anaerobic digestion, offers a mineral-rich substance that is ready for plant absorption. Over time, the stable organic matter in the compost helps to increase soil fertility and structure. The digestate content supplies a significant source of plants' rapid nutritional support. This quick release of nutrients might result in many environmental challenges, and so the application must be well managed

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Published

2026-04-07

How to Cite

Foughal, T., Bahlaouan, B., Mahmoudi, M., & Boutaleb , N. (2026). From Waste to Soil Fertility: Comparative Assessment of Anaerobic Digestion and Aerobic Composting in Agricultural Sustainability. Natural Built Social Environment Health, 2(2), 35–54. https://doi.org/10.63095/NBSEH.26.345288

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