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May 9, 2026Environmental Health Engineering and Management0 citationsOpen Access

Impacts of Wastewater Irrigation on Soil Carbon-Nutrient Cycling and Environmental Sustainability: Systematic Review

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ASAbolfazl SharifiGonabad University of Medical SciencesYSYousef Dadban ShahamatGolestan UniversityHSHassan SafariGolestan University of Medical Sciences

Key Points

  • This review aims to evaluate the effects of wastewater irrigation on soil carbon-nutrient cycling and sustainability.
  • Systematic review of 89 peer-reviewed studies published from 2000 to 2025.
  • Data synthesized included soil organic carbon, nitrogen dynamics, crop yields, and greenhouse-gas emissions.
  • Analyzed effects under various wastewater irrigation regimes.
  • Wastewater irrigation can boost soil organic carbon by up to 164% and soil nitrogen content by up to 152%.
  • Short-term crop yields increased by up to 56% due to enhanced nutrient availability.
  • Long-term impacts include soil salinization, heavy metal accumulation, and increased CO₂ and N₂O emissions, with declines in yield over time.

Abstract

Background: Wastewater irrigation is widely utilized to address water scarcity and enrich soil fertility, yet its impacts on soil carbon-nutrient cycling and environmental sustainability remain complex and multifaceted. Methods: In this systematic review of 89 peer-reviewed studies published between 2000 and 2025, we synthesized data on soil organic carbon (SOC), nitrogen dynamics, crop yields, and greenhouse‑gas (GHG) emissions (CO₂, N₂O, and CH₄) under various wastewater irrigation regimes. Results: The findings indicated that wastewater irrigation can boost SOC by up to 164% and increase soil nitrogen content by up to 152%, driving short-term crop‑yield gains of up to 56% through enhanced nutrient availability. However, prolonged application frequently leads to soil salinization, heavy‑metal accumulation, and elevated CO₂ and N₂O emissions, with several studies reporting eventual declines in yield over time. Conclusion: These results reveal a dual effect: immediate agronomic benefits counterbalanced by long-term environmental risks. Sustainable implementation requires advanced wastewater treatment, continuous soil monitoring, and optimized irrigation practices to mitigate negative impacts while preserving soil health and carbon sequestration potential. Future research should prioritize strategies that minimize GHG emissions and maximize nutrient retention to ensure long-term agricultural and environmental sustainability.

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Cite This Study

Sharifi et al. (2026) studied this question.

synapsesocial.com/papers/69fecf71b9154b0b82876653https://doi.org/10.34172/ehem.1644
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