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March 6, 2026Journal of soil science and plant nutrition3 citationsOpen Access

Soil Properties and Potassium Dynamics Under the Influence of Organomineral Fertilization in a Tropical Sandy-loam Soil

COCaroline Figueiredo OliveiraVBVinícius Melo de BenitesPLPaulo Leonel Libardi

Key Points

  • This research aims to evaluate how organomineral fertilizers affect potassium dynamics and soil properties in sandy loam soil.
  • Conducted a soil incubation study with sandy loam soil treated with organomineral fertilizers and potassium chloride.
  • Performed miscible displacement tests to assess potassium leaching.
  • Measured basal soil respiration to estimate microbial activity.
  • Organomineral fertilizers released potassium gradually, unlike the rapid release from potassium chloride.
  • This gradual release improved potassium availability and nutrient retention in the soil, reducing leaching losses.
  • Organomineral fertilizers enhanced microbial activity, indicating better biological conditions in the soil.

Abstract

Purpose Potassium (K) is essential for plant growth, yet most Brazilian soils are K-deficient, increasing reliance on imported mineral fertilizers. Organomineral fertilizers (OMF) combine organic residues with mineral nutrients and are a potential solution to reduce environmental impacts and improve K use efficiency. In this study we evaluated the release of K from OMF and its influence on the chemical, physical, and microbiological properties of a sandy loam soil. Methods A soil incubation study was conducted using columns filled with sandy loam soil treated with OMF and potassium chloride (KCl) for comparison. Miscible displacement tests were performed to assess K leaching, and basal soil respiration was measured to estimate microbial activity. Results OMF showed a slower and more gradual release of K over time compared to KCl. This slow release contributed to prolonged K availability and greater nutrient retention in the soil, delaying leaching losses. In addition, OMF increased microbial activity, indicating improved biological conditions in the soil. Conclusions OMF improve K retention and enhance microbial activity in sandy soils, demonstrating their potential to increase K use efficiency and reduce fertilizer losses. This study highlights K dynamics under miscible displacement conditions, integrating chemical, physical, and biological assessments rarely addressed together in previous research. Our results support the use of OMF as a sustainable strategy, aligned with the United Nations Sustainable Development Goals, especially in regions with low natural K reserves.

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Cite This Study

Oliveira et al. (2026) studied this question.

synapsesocial.com/papers/69aa7008531e4c4a9ff596a9https://doi.org/10.1007/s42729-026-03137-4
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Also Consider

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

  1. 1Potential of Composted Macrophytes as a Sustainable Organic Fertilizer: Environmental and Agronomic Insights2026
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  3. 3The effect of soil mineral composition on K availability to plants2024 · 1 citations
  4. 4Soil potassium adsorption and speciation dynamics with associated clay microstructural changes revealed by synchrotron X-ray microscopy2025
  5. 5Balanced Phosphorus Fractionation and Organic Carbon Accumulation With Organomineral Fertilizers in Weathered Tropical Soils2026