Decadal Impact of an Integrated Farming System on Soil Organic Carbon Stock and Carbon Sequestration across Diverse Land Use Systems

Surender Kumar *

Division of Soil Science & Agriculture Chemistry, SKUAST, Jammu, India.

Sheikh Amjid

Division of Soil Science, Faculty of Horticulture, SKUAST, Kashmir, Shalimar, Srinagar, J&K, India.

Toiba Gul

Division of Environmental Science, Faculty of Horticulture, SKUAST, Kashmir, Shalimar, Srinagar, J&K, India.

Ravi Kumar

Division of Soil Science, Faculty of Horticulture, SKUAST, Kashmir, Shalimar, Srinagar, J&K, India.

Umer Jabbar

Glocal School of Agriculture, Glocal University, Saharanpur-247121 (U.P), India.

Gajveer Meena

Division of Soil Science, Faculty of Horticulture, SKUAST, Kashmir, Shalimar, Srinagar, J&K, India.

Sofi Basit Zahoor

Division of Environmental Science, Faculty of Horticulture, SKUAST, Kashmir, Shalimar, Srinagar, J&K, India.

Bhim Singh

Division of Agronomy, Faculty of Agriculture, SKUAST, Jammu, India.

Suhail Raj Rana

Division of Vegetable Science, Faculty of Horticulture, SKUAST Kashmir, Shalimar, Srinagar, J&K, India.

Naresh Kumar Yadav

Faculty of Agriculture, Tantia university-335002, Sri Ganganagar, Rajasthan, India.

Naveena

Division of Agronomy, Faculty of Agriculture, SKUAST, Jammu, India.

Ibtisam Irshad *

Division of Soil Science, Faculty of Horticulture, SKUAST, Kashmir, Shalimar, Srinagar, J&K, India.

*Author to whom correspondence should be addressed.


Abstract

Integrated farming systems (IFS) may improve soil carbon storage by diversifying biomass inputs and reducing reliance on continuous cereal cultivation. This field study assessed depth-wise soil organic carbon (SOC) stock and surface-layer carbon sequestration in a decade-old IFS model at the Farming System Research Centre, SKUAST-Jammu, Chatha, relative to an adjoining existing farmer’s farming system (EFFS) under continuous rice–wheat cultivation. Composite soil samples were collected from four depths (0–15, 15–30, 30–45 and 45–60 cm) and analysed for organic carbon using the Walkley–Black method, while bulk density was determined by the core method. Carbon stock and sequestration were calculated from SOC concentration, bulk density and soil depth, and the data were analysed using a randomised block design. Soil carbon stock decreased with increasing depth across all land uses. The highest SOC stock up to 60 cm was recorded under boundary plantation with turmeric intercropping (46.64 Mg C ha⁻¹), followed by fodder, horticulture and crop blocks, while the lowest occurred under EFFS (26.34 Mg C ha⁻¹). Overall, the IFS model accumulated 38.91 Mg C ha⁻¹ up to 60 cm, representing about 48% greater carbon storage than in EFFS. Surface-layer carbon sequestration ranged from 2.94 Mg C ha⁻¹ under perennial fodder to 7.90 Mg C ha⁻¹ under boundary plantation, whereas EFFS showed a negative value (–0.65 Mg C ha⁻¹). Over ten years, the IFS model achieved an overall carbon sequestration of 4.47 Mg C ha⁻¹, demonstrating its greater potential for soil carbon accumulation compared with continuous rice–wheat cultivation.

Keywords: Integrated farming system, soil organic carbon, carbon stock, carbon sequestration, land use systems, rice–wheat cropping system


How to Cite

Kumar, Surender, Sheikh Amjid, Toiba Gul, Ravi Kumar, Umer Jabbar, Gajveer Meena, Sofi Basit Zahoor, et al. 2026. “Decadal Impact of an Integrated Farming System on Soil Organic Carbon Stock and Carbon Sequestration across Diverse Land Use Systems”. International Journal of Plant & Soil Science 38 (9):560-71. https://doi.org/10.9734/ijpss/2026/v38i96318.

Downloads

Download data is not yet available.