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Soil water and carbon dynamics of barley - pea intercropping in a temperate environment under projected climate change

  • Oludare S. Durodola (Lead / Corresponding author)
  • , Cathy Hawes
  • , Jo Smith
  • , Tracy A. Valentine
  • , Josie Geris

Research output: Contribution to journalArticlepeer-review

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Abstract

Intercropping is an emerging potential nature-based solution for sustainable crop production in temperate environments. However, its long-term role in contributing to climate mitigation and adaptation remains unclear. This work presents the first evidence of potential long-term water and carbon effects of barley (Hordeum vulgare L.) and pea (Pisum sativum L.) intercropping versus its barley monoculture for a typical temperate environment in Scotland. Based on experimental data, water (HYDRUS 5) and soil carbon (RothC) models were coupled to project water-carbon dynamics for the short-term during a two-season field trial (2022−2023) and the long-term future (2024–2050) under a worst-case climate scenario (Representative Concentration Pathway, RCP 8.5). The coupled water-carbon model effectively captured the water-carbon dynamics observed in the short-term. Compared to barley monoculture, intercropping increased evapotranspiration up to ∼20 % in the short-term, dominated by the dry weather conditions in 2022. Long-term intercropping projected lower interannual variability in evapotranspiration than barley monoculture, but showed higher plant transpiration in dry years, indicating more adaptive water use and hydrological resilience. As intercropping is projected to increase transpiration but reduce soil evaporation compared with barley monoculture, it maintained similar levels of soil water content and storage in the topsoil (0–30 cm). In addition, by 2050, soil carbon was predicted to increase in the upper topsoil (0–5 cm) of intercropping by 16 % (1.91 kg m−2) compared to barley monoculture (1.63 kg m−2). These novel findings suggest that intercropping could play a critical role in enhancing hydrological resilience and carbon sequestration in temperate environments for sustainable land management.

Original languageEnglish
Article number181060
Number of pages13
JournalScience of the Total Environment
Volume1010
Early online date5 Dec 2025
DOIs
Publication statusPublished - 1 Jan 2026

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 13 - Climate Action
    SDG 13 Climate Action
  2. SDG 15 - Life on Land
    SDG 15 Life on Land

Keywords

  • Agroecosystem
  • Biodiversity
  • Co-cropping
  • Crop water use
  • Mixtures
  • Soil-plant-interactions
  • Sustainable farming

ASJC Scopus subject areas

  • Environmental Engineering
  • Environmental Chemistry
  • Waste Management and Disposal
  • Pollution

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