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September 19, 2025GCB Bioenergy6 citationsOpen Access

A 13‐Year Record Indicates Differences in the Duration and Depth of Soil Carbon Accrual Among Potential Bioenergy Crops

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IKI. B. KantolaEBElena Blanc‐BetesAHAdam C. von Haden

Key Points

  • Restored prairie exhibited the highest soil carbon accrual rate at 2.5 Mg ha −1 year −1, followed by miscanthus and switchgrass.
  • After nine growing seasons, soil organic carbon stocks increased significantly in perennial crops, unlike maize/soybean.
  • Sampled soils showed varying depths of organic carbon accumulation, particularly below 50 cm in restored prairie and switchgrass.
  • Stable isotope analysis revealed new organic carbon accumulation primarily in switchgrass soils, indicating effective carbon sequestration.

Abstract

ABSTRACT Six years after replacing a maize/soybean cropping system, perennial grasses miscanthus ( Miscanthus × giganteus ) and switchgrass ( Panicum virgatum ), and a 28‐species restored prairie increased particulate organic carbon in surface soils without increasing soil organic carbon (SOC). To resolve potential changes in the quantity and distribution of SOC, soils were resampled after seven to thirteen years to measure bulk density, carbon (C) content, and stable C isotopes to a depth of 1 m. SOC stocks increased between 1.75 and 2.5 Mg ha −1 year −1 in all perennial crops between 2008 and 2016 (nine growing seasons). Despite relatively low litter inputs and belowground biomass, the highest rate of SOC accrual was in restored prairie (2.5 Mg ha −1 year −1 ), followed by miscanthus (2.0 Mg ha −1 year −1 ) and switchgrass (1.75 Mg ha −1 year −1 ). The change in SOC in maize/soybean was not significant. After 2016, total SOC decreased in maize/soybean and miscanthus, resulting in slower overall rates of SOC accumulation over the full sampling period for miscanthus (0.8 Mg ha −1 year −1 ). The rate of SOC accumulation was greatest below 50 cm depth for restored prairie and switchgrass but in the top 10 cm for miscanthus. Stable isotope analysis showed 13 C enrichment in all depths of switchgrass soils, an indication of new organic C accumulation, but mixed results in all other crops. Planting perennial crops on land formerly in an annual maize/soybean cropping system can slow or reverse soil carbon losses, with the greatest increases in SOC from species‐rich prairie.

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Cite This Study

Kantola et al. (2025) studied this question.

synapsesocial.com/papers/68d464ff31b076d99fa64990https://doi.org/10.1111/gcbb.70080
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Also Consider

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

  1. 1Mitigating the soil carbon deficit of annual agriculture with perennial bioenergy crops in the U.S. Midwest2026
  2. 2Assessing the Potential of Switchgrass (Panicum virgatum L.) for Storing Carbon Belowground: Insights from a Multi-Site US Study2025
  3. 3Assessing the Effect of a Deep‐Rooted Grass on Belowground Carbon Storage in Cultivated Land: Insights From a Multi‐Site US Study2026 · 2 citations
  4. 4Genotypic Differences in Soil Carbon Stocks Under <i>Miscanthus</i>: Implications for Carbon Sequestration and Plant Breeding2025 · 2 citations
  5. 5Soil carbon maintained by perennial grasslands over 30 years but lost in field crop systems in a temperate Mollisol2024 · 17 citations