School of Earth and Environment, Anhui University of Science and Technology, Huainan 232001, China.
* Corresponding Author
ORCID Details
Obed Nwasen Likpalimor: https://orcid.org/0009-0005-7479-8451
International Journal of Science and Research Archive, 2026, 20(02), 477–488
Article DOI: 10.30574/ijsra.2026.20.2.1621
Received on 05 July 2026; revised on 17 August 2026; accepted on 19 August 2026
Global cereal production must increase by approximately 43 million metric tons annually by 2050 to meet projected demand, yet current yield trajectories leave a 39% gap while agricultural systems continue to degrade soils and emit substantial greenhouse gases. This review synthesizes climate-smart agroecological strategies that simultaneously address productivity shortfalls, soil degradation, and climate mitigation by integrating soil remediation with smart nutrient management. Drawing on global FAO datasets, meta-analyses of field experiments, and molecular assessments of soil microbial communities, we evaluate five core approaches: precision agriculture, regenerative practices (no-till and cover cropping), biochar application, agroforestry, and integrated nutrient management.
Quantitative synthesis shows that no-till increased soil organic carbon by 18% and total nitrogen by 21% in the top 10 cm. Cover-crop mixtures enhanced water infiltration by up to 629% and raised yields by 13%, whereas sole cover crops reduced yields by approximately 4%. Biochar alone improved crop yield by 15.1% and by 48.4% when combined with mineral fertilizers, while reducing nitrous oxide emissions by 16.2% and delivering the largest gain in soil organic carbon (+39%). Optimal biochar performance was associated with pyrolysis temperatures of 401–500 °C and feedstock C:N ratios of 31–100. Legume-based rotations increased equivalent yield by 38% and cut nitrous oxide emissions by 39%. Agroforestry systems sequestered between 0.29 and 15.21 Mg C ha⁻¹ yr⁻¹. Precision agriculture raised nitrogen use efficiency by 10–25%.
By systematically comparing these practices across yield, soil carbon, nutrient efficiency, and greenhouse-gas metrics, and by linking outcomes to microbial mechanisms, this review identifies context-specific levers for sustainable intensification. Integrated application of soil remediation and smart nutrient management within a climate-smart framework offers a viable pathway to close the global yield gap while enhancing carbon sequestration and reducing emissions. Long-term, multi-site trials across tropical and subtropical systems remain essential to refine deployment guidelines and quantify trade-offs under future climate scenarios.
Climate-Smart Agriculture; Soil Remediation; Smart Nutrient Management; Agroforestry; Soil Organic Carbon; Regenerative Agriculture
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Obed Nwasen Likpalimor and Shiwen Zhang. INTEGRATING SOIL REMEDIATION AND SMART NUTRIENT MANAGEMENT IN CLIMATE-SMART AGROECOLOGY TO CLOSE THE GLOBAL YIELD GAP. International Journal of Science and Research Archive, 2026, 20(02), 477–488. Article DOI: https://doi.org/10.30574/ijsra.2026.20.2.1621.






