Understanding Soil Carbon and Phosphorus Dynamics under Grass-Legume Intercropping in a Semi-Arid Region

Author:

Singh Amit Kumar1ORCID,Singh Jai Bahadur1,Singh Ramesh2,Kantwa Sita Ram1,Jha Prakash Kumar3ORCID,Ahamad Safik1,Singh Anand1,Ghosh Avijit1,Prasad Mahendra1,Singh Shikha4,Singh Surendra4ORCID,Prasad P. V. Vara35ORCID

Affiliation:

1. Indian Council of Agricultural Research—Indian Grassland and Fodder Research Institute, Jhansi 284003, India

2. International Crops Research Institute for the Semi-Arid Tropics, Hyderabad 502324, India

3. Sustainable Intensification Innovation Lab., Kansas State University, Manhattan, KS 66506, USA

4. Lind Dryland Research Station, Department of Crop and Soil Sciences, Washington State University, Lind, WA 99341, USA

5. Department of Agronomy, Kansas State University, Manhattan, KS 66506, USA

Abstract

An integrated forage-legume cropping system has immense potential to address the issue of land degradability. It provides a critical understanding of the capacity of diversified species mixes vs. monocultures to boost forage production and the dynamics of soil organic carbon (SOC) and phosphorus (P). In this study, we assessed the performance of Napier Bajra Hybrid (NBH) (Pennisetum glaucum × P. purpureum) + cowpea (Vigna unguiculata) and tri-specific hybrid (TSH) (P. glaucum × P. purpureum × P. squamulatum) + cluster bean (Cyamopsis tetragonoloba) as compared to monocultures of NBH and TSH. The legume equivalent yield of NBH + cowpea and TSH + cluster bean intercropping systems were found −31% and −23% higher than monoculture systems. The SOC increased by −5% in the NBH + cowpea system as compared to NBH monoculture. The carbon mineralization rates under NBH + cowpea and TSH + cluster bean were −32% and −38% lower than the NBH and TSH monoculture cropping systems, respectively. It was found that the legume intensification with the forage significantly improved the soil’s P status. The research suggested that coalescing diverse crops (e.g., grass and legume) poses enormous potential for sustaining soil health and productivity in semi-arid regions of India. This study advances the research on characterizing the crucial factors of grass-legume-based cropping systems and helps in assessing the impact of these factors on long-term sustainability.

Publisher

MDPI AG

Subject

Agronomy and Crop Science

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