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Updated: May 17, 2025

A CO2 Concentration Gradient Facility for Testing CO2 Enrichment and Soil Effects on Grassland Ecosystem Function
Published on: November 21, 2015
Loss of P Fertilizer Effectiveness in Raising Soil P Availability in a Grazed Grassland Enriched With CO2 for
Zac Beechey-Gradwell1, Alec Mackay1, Leo Condron2
1AgResearch Ltd, Climate Change and Forage Innovations, Palmerston North, New Zealand.
Abstract:
Phosphorus (P) is a finite resource and an essential macronutrient for plant growth. The importance of low soil P availability in constraining plant biomass responses to elevated CO2 (eCO2) is increasingly recognized. P fertilization could alleviate these constraints, but biogeochemical feedbacks under eCO2 may diminish the effectiveness of P fertilizer in raising soil P availability. Here, we present data from a botanically diverse grazed pasture enriched with CO2 (+84-111 ppm) and supplied with P fertilizer (1.5 g P m-2 year-1) for approximately 24 years, showing (1) a sustained 27% reduction in topsoil Olsen P under eCO2 prior to annual fertilizer application, and (2) an approximate halving of the short-term (approximately 4 months) effectiveness of P fertilizer in raising Olsen P by 1 unit under eCO2. Similar results occurred with the Bray-1 soil P test. These effects soon disappeared after CO2 enrichment stopped. Accumulation of moderately labile organic P in the eCO2 topsoil shortly after fertilization indicated rapid biological immobilization of newly applied P occurring under eCO2. Alternative P loss mechanisms under eCO2, including inorganic P depletion due to increased pasture growth, increased P offtake versus return through the plant→animal→dung pathway, or P movement down the soil profile, were not supported by the available evidence. Despite this, pasture P concentration and uptake were similar under eCO2 and ambient CO2, and the biomass of the P-sensitive legume Trifolium repens was often greater under eCO2. Thus, either the fertilizer regime was sufficient to maintain a non-limiting pasture P status, or integrated plant-soil biological adjustments under eCO2 compensated for reduced P availability. If compensatory mechanisms play a greater role in supporting crop P nutrition under eCO2 but are neglected by routine soil P availability tests focused on inorganic P, overapplication of P fertilizers will occur as CO2 levels continue to rise.
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