25, June 2026

Beyond Carbon: Nitrogen Management and the Missing Dimension in Global Fertilizer Sustainability Frameworks

Author(s): 1 Pragnya Velaga, 2 Yashashwini Reddy Kambam, 3 Preetham Penugonda, 4 Tisha Nama

Authors Affiliations:

1School of Business, Woxsen University, Hyderabad, India

2School of Business, Woxsen University, Hyderabad, India

3School of Business, Woxsen University, Hyderabad, India

4School of Business, Woxsen University, Hyderabad, India

DOIs:10.2015/IJIRMF/202606032     |     Paper ID: IJIRMF202606032


Abstract
Keywords
Cite this Article/Paper as
References

Sustainability frameworks on a global scale, such as the Paris Agreement and the UN's Sustainable Development Goals, have influenced how governments currently formulate fertilizer policies, primarily from the carbon perspective. The specific effects of nitrate leaching, residual nitrogen losses and the long-term implications of these on water quality, soil health and the stability of ecosystems, have been less emphasized in international policies, and through the research that helps to inform them. There are currently no agricultural sustainability frameworks that adequately account for all environmental and social costs associated with nitrogen. This study has looked at nine different countries (China, India, USA, Brazil, EU, Denmark, Great Britain, South Africa and Australia) to see if governments are focused on carbon reduction versus the more effective management of nitrogen (through an examination of the peer-reviewed literature). A total of 38 peer-reviewed papers published between 1989 and 2026, from Google Scholar, ScienceDirect, Springer Nature, MDPI, Frontiers, PLOS ONE, and Nature/Scientific Reports were examined; the policy frameworks for each of the nine countries were then reviewed and compared using a structured table. The results demonstrated that all of the countries are focused on agricultural carbon rather than nitrogen. Each of the countries studied have limited regulations on nitrate leaching, groundwater contamination, and nitrogen use efficiency even though there is a considerable amount of scientific evidence documenting their negative effects on the environment. As global fertiliser use continues to increase, the gap between scientific evidence and policy coverage has potential implications for environmental and public health. A dual carbon-nitrogen approach within international frameworks is presented as one possible direction for more complete fertiliser sustainability governance.

Nitrogen fertilizer management, Nitrate leaching, Fertilizer sustainability policy, Agricultural greenhouse gas emissions, Nitrogen use efficiency, Global sustainability frameworks, Carbon-nitrogen governance

Pragnya Velaga,  Yashashwini Reddy Kambam,  Preetham Penugonda,  Tisha Nama (2026); Beyond Carbon: Nitrogen Management and the Missing Dimension in Global Fertilizer Sustainability Frameworks, International Journal for Innovative Research in Multidisciplinary Field, ISSN(O): 2455-0620, Vol-12, Issue-6, Available on –   https://www.ijirmf.com/

  1. Ahmed, M., Jaffar, M. T., Ahmad, Z., Naveed, M., Javed, S. A., Asad, M. S., … & Zhang, J. (2025). Potential of organic amendments as a sustainable strategy to enhance rice yield by improving nutrient use efficiency and physiological performance in alkaline soil. Journal of Plant Growth Regulation, 1–18.
  2. Ahmed, M., Rauf, M., Mukhtar, Z., & Saeed, N. A. (2017). Excessive use of nitrogenous fertilizers: an unawareness causing serious threats to environment and human health. Environmental Science and Pollution Research, 24(35), 26983–26987.
  3. Borchard, N., Schirrmann, M., Cayuela, M. L., Kammann, C., Wrage-Mönnig, N., Estavillo, J. M., … & Novak, J. (2019). Biochar, soil and land-use interactions that reduce nitrate leaching and N₂O emissions: a meta-analysis. Science of the Total Environment, 651, 2354–2364.
  4. Buckingham, S., Anthony, S., Bellamy, P. H., Cardenas, L. M., Higgins, S., McGeough, K., & Topp, C. F. E. (2014). Review and analysis of global agricultural N₂O emissions relevant to the UK. Science of the Total Environment, 487, 164–172.
  5. Byrnes, B. H. (1990). Environmental effects of N fertilizer use: An overview. Fertilizer Research, 26(1), 209–215.
  6. De Notaris, C., Rasmussen, J., Sørensen, P., & Olesen, J. E. (2018). Nitrogen leaching: A crop rotation perspective on the effect of N surplus, field management and use of catch crops. Agriculture, Ecosystems & Environment, 255, 1–11.
  7. De Vries, W. (2021). Impacts of nitrogen emissions on ecosystems and human health: A mini review. Current Opinion in Environmental Science & Health, 21, 100249.
  8. Dobbie, K. E., & Smith, K. A. (2003). Impact of different forms of N fertilizer on N₂O emissions from intensive grassland. Nutrient Cycling in Agroecosystems, 67(1), 37–46.
  9. El Chami, D., Santagata, R., Moretti, S., Moreschi, L., Del Borghi, A., & Gallo, M. (2023). A life cycle assessment to evaluate the environmental benefits of applying the circular economy model to the fertiliser sector. Sustainability, 15(21), 15468.
  10. Guo, C., Liu, X., & He, X. (2022). A global meta-analysis of crop yield and agricultural greenhouse gas emissions under nitrogen fertilizer application. Science of the Total Environment, 831, 154982.
  11. Hansen, B., Kristensen, E. S., Grant, R., Høgh-Jensen, H., Simmelsgaard, S. E., & Olesen, J. E. (2000). Nitrogen leaching from conventional versus organic farming systems: a systems modelling approach. European Journal of Agronomy, 13(1), 65–82.
  12. Hasler, K., Bröring, S., Omta, S. W. F., & Olfs, H. W. (2015). Life cycle assessment (LCA) of different fertilizer product types. European Journal of Agronomy, 69, 41–51.
  13. Hirel, B., Tétu, T., Lea, P. J., & Dubois, F. (2011). Improving nitrogen use efficiency in crops for sustainable agriculture. Sustainability, 3(9), 1452–1485.
  14. Hina, N. S. (2024). Global meta-analysis of nitrate leaching vulnerability in synthetic and organic fertilizers over the past four decades. Water, 16(3), 457.
  15. Kyriakou, V., Garagounis, I., Vourros, A., Vasileiou, E., & Stoukides, M. (2020). An electrochemical haber-bosch process. Joule, 4(1), 142–158.
  16. Laing, A. M., Eckard, R. J., Smith, A. P., & Grace, P. (2023). Twenty years of nitrous oxide emissions research in Australian agriculture: A review. Agriculture, Ecosystems & Environment, 356, 108638.
  17. Li, H., Jia, B., Wang, H., Li, D., Fang, Q., He, J., … & Li, R. (2026). Optimizing irrigation and nitrogen rates for sustainable wheat production: Balancing yield and nitrate leaching in a 7-year field study. Soil and Tillage Research, 255, 106822.
  18. Li, W., Guo, S., Liu, H., Zhai, L., Wang, H., & Lei, Q. (2018). Comprehensive environmental impacts of fertilizer application vary among different crops: Implications for the adjustment of agricultural structure aimed to reduce fertilizer use. Agricultural Water Management, 210, 1–10.
  19. Maraseni, T. N., & Qu, J. (2016). An international comparison of agricultural nitrous oxide emissions. Journal of Cleaner Production, 135, 1256–1266.
  20. Menegat, S., Ledo, A., & Tirado, R. (2022). Greenhouse gas emissions from global production and use of nitrogen synthetic fertilisers in agriculture. Scientific Reports, 12(1), 14490.
  21. Móring, A., Hooda, S., Raghuram, N., Adhya, T. K., Ahmad, A., Bandyopadhyay, S. K., … & Sutton, M. A. (2021). Nitrogen challenges and opportunities for agricultural and environmental science in India. Frontiers in Sustainable Food Systems, 5, 505347.
  22. Newbould, P. (1989). The use of nitrogen fertiliser in agriculture: Where do we go practically and ecologically? Plant and Soil, 115(2), 297–311.
  23. Nieder, R., & Benbi, D. K. (2022). Reactive nitrogen compounds and their influence on human health: an overview. Reviews on Environmental Health, 37(2), 229–246.
  24. Pérez-Ramírez, J. (2007). Prospects of N₂O emission regulations in the European fertilizer industry. Applied Catalysis B: Environmental, 70(1-4), 31–35.
  25. Qasim, W., Xia, L., Lin, S., Wan, L., Zhao, Y., & Butterbach-Bahl, K. (2021). Global greenhouse vegetable production systems are hotspots of soil N₂O emissions and nitrogen leaching: A meta-analysis. Environmental Pollution, 272, 116372.
  26. Quemada, M., Baranski, M., Nobel-de Lange, M. N. J., Vallejo, A., & Cooper, J. M. (2013). Meta-analysis of strategies to control nitrate leaching in irrigated agricultural systems and their effects on crop yield. Agriculture, Ecosystems & Environment, 174, 1–10.
  27. Sharma, L. K., & Bali, S. K. (2017). A review of methods to improve nitrogen use efficiency in agriculture. Sustainability, 10(1), 51.
  28. Smith, K. A., McTaggart, I. P., & Tsuruta, H. (1997). Emissions of N₂O and NO associated with nitrogen fertilization in intensive agriculture, and the potential for mitigation. Soil Use and Management, 13, 296–304.
  29. Takeda, N., Friedl, J., Rowlings, D., De Rosa, D., Scheer, C., & Grace, P. (2021). Exponential response of nitrous oxide (N₂O) emissions to increasing nitrogen fertiliser rates in a tropical sugarcane cropping system. Agriculture, Ecosystems & Environment, 313, 107376.
  30. Tian, X., Li, C., Zhang, M., Li, T., Lu, Y., & Liu, L. (2018). Controlled release urea improved crop yields and mitigated nitrate leaching under cotton-garlic intercropping system in a 4-year field trial. Soil and Tillage Research, 175, 158–167.
  31. Tongwane, M. I., Moeletsi, M. E., & Tsubo, M. (2020). Trends of carbon emissions from applications of nitrogen fertiliser and crop residues to agricultural soils in South Africa. Journal of Environmental Management, 272, 111056.
  32. Van Es, H. M., Sogbedji, J. M., & Schindelbeck, R. R. (2006). Effect of manure application timing, crop, and soil type on nitrate leaching. Journal of Environmental Quality, 35(2), 670–679.
  33. Velayudhan, P. K., Sivalingam, N., Jha, G. K., Singh, A., & Pathak, H. (2024). Nitrogen budget of Indian agriculture: trends, determinants and challenges. Environment, Development and Sustainability, 26(4), 10225–10242.
  34. Wang, H., Gao, J. E., Li, X. H., Zhang, S. L., & Wang, H. J. (2015). Nitrate accumulation and leaching in surface and ground water based on simulated rainfall experiments. PLOS One, 10(8), e0136274.
  35. Wang, Y., Ying, H., Yin, Y., Zheng, H., & Cui, Z. (2019). Estimating soil nitrate leaching of nitrogen fertilizer from global meta-analysis. Science of the Total Environment, 657, 96–102.
  36. Wei, Z., Hoffland, E., Zhuang, M., Hellegers, P., & Cui, Z. (2021). Organic inputs to reduce nitrogen export via leaching and runoff: A global meta-analysis. Environmental Pollution, 291, 118176.
  37. Xu, C., Huang, S., Tian, B., Ren, J., Meng, Q., & Wang, P. (2017). Manipulating planting density and nitrogen fertilizer application to improve yield and reduce environmental impact in Chinese maize production. Frontiers in Plant Science, 8, 1234.
  38. Zuluaga, D. L., & Sonnante, G. (2019). The use of nitrogen and its regulation in cereals: Structural genes, transcription factors, and the role of miRNAs. Plants, 8(8), 294.

Download Full Paper

Download PDF No. of Downloads:14 | No. of Views: 62