Predicting soil phosphorus uptake: Evaluating low‐cost chemical alternatives to DGT technology

Abstract Soil phosphorus tests quantify specific fractions but fail to capture P kinetics that govern plant availability. Diffusive gradients in thin films (DGT) technology offers a dynamic measure of P mobilization, outperforming conventional extractions in predicting soil P supply. In this study, agricultural soils with varying P saturation were assessed using DGT at multiple deployment times and compared with standard extractions (ammonium‐acetate‐lactate [P‐AL], Olsen‐P, and CaCl 2 ‐P). We evaluated adsorption isotherms and chemical parameters controlling P sorption to link kinetic insights with predictive models. Results showed that DGT‐derived labile P concentration (P DGT ) was the single best predictor of plant P uptake ( R 2 = 0.88). While DGT's effectiveness is documents, our specific novel contribution is identifying that a combination of P‐AL, Al‐AL, and soil organic carbon matches DGTs precision ( R 2 = 0.90–0.92) for these agricultural soils. This finding demonstrates that low‐cost analyses can substitute for advanced DGT measurements without compromising precision. By integrating sorption characteristics and soil chemistry, our approach provides a practical framework for improving fertilizer recommendations while reducing environmental risk. These insights advance understanding of soil P dynamics and offer stakeholders an efficient alternative for predicting crop P uptake and yield response

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Publication Details

Journal
Agrosystems Geosciences & Environment
Published
2026-09-28
DOI
https://doi.org/10.1002/agg2.70460
Primary Topic
Soil and Water Nutrient Dynamics
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article
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Predicting soil phosphorus uptake: Evaluating low‐cost chemical alternatives to DGT technology

Åsgeir Rossebø Almås, Annbjørg Øverli Kristoffersen, Anne Falk Øgaard
Agrosystems Geosciences & Environment
Soil and Water Nutrient Dynamics
article

Predicting soil phosphorus uptake: Evaluating low‐cost chemical alternatives to DGT technology

Åsgeir Rossebø Almås, Annbjørg Øverli Kristoffersen, Anne Falk Øgaard
article en

Abstract

Abstract Soil phosphorus tests quantify specific fractions but fail to capture P kinetics that govern plant availability. Diffusive gradients in thin films (DGT) technology offers a dynamic measure of P mobilization, outperforming conventional extractions in predicting soil P supply. In this study, agricultural soils with varying P saturation were assessed using DGT at multiple deployment times and compared with standard extractions (ammonium‐acetate‐lactate [P‐AL], Olsen‐P, and CaCl 2 ‐P). We evaluated adsorption isotherms and chemical parameters controlling P sorption to link kinetic insights with predictive models. Results showed that DGT‐derived labile P concentration (P DGT ) was the single best predictor of plant P uptake ( R 2 = 0.88). While DGT's effectiveness is documents, our specific novel contribution is identifying that a combination of P‐AL, Al‐AL, and soil organic carbon matches DGTs precision ( R 2 = 0.90–0.92) for these agricultural soils. This finding demonstrates that low‐cost analyses can substitute for advanced DGT measurements without compromising precision. By integrating sorption characteristics and soil chemistry, our approach provides a practical framework for improving fertilizer recommendations while reducing environmental risk. These insights advance understanding of soil P dynamics and offer stakeholders an efficient alternative for predicting crop P uptake and yield response

Agrosystems Geosciences & EnvironmentVol. 9(4)
Norwegian Institute of Bioeconomy Research (NO), Norwegian University of Life Sciences (NO)
Zero hunger
Openalex Percentile: Top 19%
Soil and Water Nutrient Dynamics
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