in

Deficit saline water irrigation under reduced tillage and residue mulch improves soil health in sorghum-wheat cropping system in semi-arid region

[adace-ad id="91168"]
  • 1.

    Srinivasarao, C. et al. Grain yield and carbon sequestration potential of post monsoon sorghum cultivation in Vertisols in the semi arid tropics of central India. Geoderma 175–176, 90–97 (2012).

    ADS  Article  CAS  Google Scholar 

  • 2.

    Yadav, R. K., Singh, S. P., Lal, D. & Kumar, A. Fodder production and soil health with conjunctive use of saline and good quality water in ustipsamments of a semi-arid region. L. Degrad. Dev. 18, 153–161 (2007).

    Article  Google Scholar 

  • 3.

    Visser, S., Keesstra, S., Maas, G., de Cleen, M. & Molenaar, C. Soil as a basis to create enabling conditions for transitions towards sustainable land management as a Key to Achieve the SDGs by 2030. Sustainability 11, 6792 (2019).

    Article  Google Scholar 

  • 4.

    Keesstra, S. et al. Soil-related Sustainable Development Goals: Four concepts to make land degradation neutrality and restoration work. Land 7, 133 (2018).

    Article  Google Scholar 

  • 5.

    Sharma, B. R. & Minhas, P. S. Strategies for managing saline/alkali waters for sustainable agricultural production in South Asia. Agric. Water Manag. 78, 136–151 (2005).

    Article  Google Scholar 

  • 6.

    Basak, N., Barman, A., Sundha, P. & Rai, A. K. Recent trends in soil salinity appraisal and management. In Soil Analysis: Recent Trends and Applications (eds Rakshit, A. et al.) 143–162 (Springer, Singapore, 2020). https://doi.org/10.1007/978-981-15-2039-6_9.

    Google Scholar 

  • 7.

    Liu, T. et al. Soil environment and growth adaptation strategies of Amorpha fruticosa as affected by mulching in a moderately saline wasteland. Land Degrad. Dev. 31, 2672–2683. https://doi.org/10.1002/ldr.3612 (2020).

  • 8.

    Yu, K. & Wang, G. Long-term impacts of shrub plantations in a desert–oasis ecotone: accumulation of soil nutrients, salinity, and development of herbaceour layer. Land Degrad. Dev. 29, 2681–2693 (2018).

    Article  Google Scholar 

  • 9.

    Chauhan, C. P. S., Singh, R. B. & Gupta, S. K. Supplemental irrigation of wheat with saline water. Agric. Water Manag. 95, 253–258 (2008).

    Article  Google Scholar 

  • 10.

    Qadir, M. et al. Productivity enhancement of salt-affected environments through crop diversification. Land Degrad. Dev. 19, 429–453 (2008).

    Article  Google Scholar 

  • 11.

    Kumar, S. et al. Forage Production Technology for Arable Lands 48 (Indian Grassland and Fodder Research Institute, Jhansi 284 003, Uttar Pradesh, India. Technology Bulletin no.1/2012, 2012).

  • 12.

    Maas, E. V. & Grattan, S. R. Crop yields as affected by salinity. In Handbook of Plant and Crop Stress (ed. Pessarakli, M.) 55–108 (Marcel Dekker, New York, 1999).

    Google Scholar 

  • 13.

    Kumar, S., Agrawal, R. K., Dixit A. K., Rai, A. K. & Rai, S. K. Forage crops and their management 60 (Indian Grassland and Fodder Research Institute, Jhansi 284 003, Uttar Pradesh, India. Technology Bulletin no. 2/2012, 2012).

  • 14.

    Jiang, J., Huo, Z., Feng, S. & Zhang, C. Effect of irrigation amount and water salinity on water consumption and water productivity of spring wheat in Northwest China. Field Crop. Res. 137, 78–88 (2012).

    Article  Google Scholar 

  • 15.

    Nagaz, K., Masmoudi, M. M. & Mechlia, N. B. Impacts of irrigation regimes with saline water on carrot productivity and soil salinity. J. Saudi Soc. Agric. Sci. 11, 19–27 (2012).

    CAS  Google Scholar 

  • 16.

    Mosaffa, H. R. & Sepaskhah, A. R. Performance of irrigation regimes and water salinity on winter wheat as influenced by planting methods. Agric. Water Manag. 216, 444–456 (2019).

    Article  Google Scholar 

  • 17.

    Purakayastha, T. J. et al. Soil health card development for efficient soil management in Haryana, India. Soil Tillage Res. 191, 294–305 (2019).

    Article  Google Scholar 

  • 18.

    Grigg, A. H., Sheridan, G. J., Pearce, A. B. & Mulligan, D. R. The effect of organic mulch amendments on the physical and chemical properties and revegetation success of a saline-sodic minespoil from central Queensland, Australia. Soil Res. 44, 97–105 (2006).

    CAS  Article  Google Scholar 

  • 19.

    Wang, Q. et al. The effects of no-tillage with subsoiling on soil properties and maize yield: 12-year experiment on alkaline soils of Northeast China. Soil Tillage Res. 137, 43–49 (2014).

    Article  Google Scholar 

  • 20.

    Basak, N. & Mandal, B. Soil quality management through carbon farming under intensive agriculture systems. Indian J. Fertil. 12, 54–64 (2019).

    Google Scholar 

  • 21.

    Tsiafouli, M. A. et al. Intensive agriculture reduces soil biodiversity across Europe. Glob. Change Biol. 21, 973–985 (2015).

    ADS  Article  Google Scholar 

  • 22.

    de Vries, F. T. et al. Soil food web properties explain ecosystem services across European land use systems. Proc. Natl. Acad. Sci. USA 110, 14296–14301 (2013).

    ADS  PubMed  Article  PubMed Central  Google Scholar 

  • 23.

    Anonymous. Vision 2050 31 (ICAR-Central Soil Salinity Research Institute, Karnal, India, 2015). www.cssri.res.in.

  • 24.

    Singh, A. Managing the salinization and drainage problems of irrigated areas through remote sensing and GIS techniques. Ecol. Indic. 89, 584–589 (2018).

    Article  Google Scholar 

  • 25.

    Yao, R., Yang, J., Gao, P., Zhang, J. & Jin, W. Determining minimum data set for soil quality assessment of typical salt-affected farmland in the coastal reclamation area. Soil Tillage Res. 128, 137–148 (2013).

    Article  Google Scholar 

  • 26.

    Napoli, M., Marta, A. D., Zanchi, C. A. & Orlandini, S. Assessment of soil and nutrient losses by runoff under different soil management practices in an Italian hilly vineyard. Soil Tillage Res. 168, 71–80 (2017).

    Article  Google Scholar 

  • 27.

    Sharma, D. P., Rao, K. V. G. K., Singh, K. N., Kumbhare, P. S. & Oosterbaan, R. J. Conjunctive use of saline and non-saline irrigation waters in semi-arid regions. Irrig. Sci. 15, 25–33 (1994).

    Article  Google Scholar 

  • 28.

    Sharma, D. P., Singh, K. N. & Kumbhare, P. S. Reuse of agricultural drainage water for crop production. J. Indian Soc. Soil Sci. 49, 483–488 (2001).

    Google Scholar 

  • 29.

    Heimsath, A. M., Dietrich, W. E., Nishiizumi, K. & Finkel, R. C. The soil production function and landscape equilibrium. Nature 388, 358–361 (1997).

    ADS  CAS  Article  Google Scholar 

  • 30.

    Giacomini, S. J., Recous, S., Mary, B. & Aita, C. Simulating the effects of N availability, straw particle size and location in soil on C and N mineralization. Plant Soil 301, 289–301 (2007).

    CAS  Article  Google Scholar 

  • 31.

    Nawaz, A., Farooq, M., Lal, R., Rehman, A. & Rehman, H. Comparison of conventional and conservation rice-wheat systems in Punjab, Pakistan. Soil Tillage Res. 169, 35–43 (2017)

  • 32.

    Rai, A. K., Bhardwaj, R., Sureja, A. K. & Bhattacharyya, D. Effect of pine needles on inorganic nitrogen pools of soil treated with fertilizers and manure under cabbage crop. Range Manag. Agrofor. 32, 118–123 (2011).

    Google Scholar 

  • 33.

    Dong, Q., Yang, Y., Yu, K. & Feng, H. Effects of straw mulching and plastic film mulching on improving soil organic carbon and nitrogen fractions, crop yield and water use efficiency in the Loess Plateau, China. Agric. Water Manag. 201, 133–143 (2018).

    Article  Google Scholar 

  • 34.

    Wade, J. et al. Improved soil biological health increases corn grain yield in N fertilized systems across the Corn Belt. Sci. Rep. 10, 3917 (2020).

    ADS  CAS  PubMed  PubMed Central  Article  Google Scholar 

  • 35.

    Mitran, T., Mani, P. K., Bandyopadhyay, P. K. & Basak, N. Effects of organic amendments on soil physical attributes and aggregate-associated phosphorus under long-term rice-wheat cropping. Pedosphere 28, 823–832 (2018).

    Article  Google Scholar 

  • 36.

    Sundha, P., Basak, N., Rai, A. K., Yadav, R. K. & Sharma, D. K. N and P release pattern in saline-sodic soil amended with gypsum and municipal solid waste compost. J. Soil Salin. Water Qual. 9, 145–155 (2017).

    Google Scholar 

  • 37.

    Margenot, A. J. et al. Can conservation agriculture improve phosphorus (P) availability in weathered soils? Effects of tillage and residue management on soil P status after 9 years in a Kenyan Oxisol. Soil Tillage Res. 166, 157–166 (2017).

    Article  Google Scholar 

  • 38.

    Deubel, A., Hofmann, B. & Orzessek, D. Long-term effects of tillage on stratification and plant availability of phosphate and potassium in a loess chernozem. Soil Tillage Res. 117, 85–92 (2011).

    Article  Google Scholar 

  • 39.

    Wei, K., Chen, Z., Zhu, A., Zhang, J. & Chen, L. Application of 31P NMR spectroscopy in determining phosphatase activities and P composition in soil aggregates influenced by tillage and residue management practices. Soil Tillage Res. 138, 35–43 (2014).

    Article  Google Scholar 

  • 40.

    Domínguez, R., Campillo, C. D., Pena, F. & Delgado, A. Effect of soil properties and reclamation practices on phosphorus dynamics in reclaimed calcareous marsh soils from the Guadalquivir Valley, SW Spain. Arid Land Res. Manag. 15, 203–221 (2001).

    Article  Google Scholar 

  • 41.

    Ghosh, S., Wilson, B., Ghoshal, S., Senapati, N. & Mandal, B. Organic amendments influence soil quality and carbon sequestration in the Indo-Gangetic plains of India. Agric. Ecosyst. Environ. 156, 134–141 (2012).

    Article  Google Scholar 

  • 42.

    Ding, Z. et al. The integrated effect of salinity, organic amendments, phosphorus fertilizers, and deficit irrigation on soil properties, phosphorus fractionation and wheat productivity. Sci. Rep. 10, 2736 (2020).

    ADS  CAS  PubMed  PubMed Central  Article  Google Scholar 

  • 43.

    Mitran, T., Mani, P. K., Basak, N., Biswas, S. & Mandal, B. Organic amendments influence on soil biological indices and yield in rice-based cropping system in Coastal Sundarbans of India. Commun. Soil Sci. Plant Anal. 48, 170–185 (2017).

    CAS  Article  Google Scholar 

  • 44.

    Salinas-Garcı́a, J. R. et al. Tillage effects on microbial biomass and nutrient distribution in soils under rain-fed corn production in central-western Mexico. Soil Tillage Res. 66, 143–152 (2002).

    Article  Google Scholar 

  • 45.

    Basak, N., Datta, A., Mitran, T., Mandal, B. & Mani, P. K. Impact of organic and mineral inputs onto soil biological and metabolic activities under a long-term rice-wheat cropping system in sub-tropical Indian Inceptisols. J. Environ. Biol. 37, 83–89 (2016).

    PubMed  PubMed Central  Google Scholar 

  • 46.

    Dixit, A. K. et al. Soil properties, crop productivity and energetics under different tillage practices in fodder sorghum + cowpea–wheat cropping system. Arch. Agron. Soil Sci. 65, 492–506. https://doi.org/10.1080/03650340.2018.1507024 (2019).

    CAS  Article  Google Scholar 

  • 47.

    Rai, A. K., Bhardwaj, R. & Sureja, A. K. Effect of mixing pine needles litters on soil biological properties and phosphorus availability in soil amended with fertilizers and manures. Commun. Soil Sci. Plant Anal. 48, 1052–1058. https://doi.org/10.1080/00103624.2017.1323096 (2017).

    CAS  Article  Google Scholar 

  • 48.

    Wichern, F., Islam, M. R., Hemkemeyer, M., Watson, C. & Joergensen, R. G. Organic amendments alleviate salinity effects on soil microorganisms and mineralisation processes in aerobic and anaerobic paddy rice soils. Front. Sustain. Food Syst. 4, 30 (2020).

    Article  Google Scholar 

  • 49.

    Meena, M. D. et al. Effects of municipal solid waste compost, rice-straw compost and mineral fertilisers on biological and chemical properties of a saline soil and yields in a mustard–pearl millet cropping system. Soil Res. 54, 958–969 (2016).

    CAS  Article  Google Scholar 

  • 50.

    Yan, N. & Marschner, P. Response of microbial activity and biomass to increasing salinity depends on the final salinity, not the original salinity. Soil Biol. Biochem. 53, 50–55 (2012).

    CAS  Article  Google Scholar 

  • 51.

    Gao, Y. et al. Effects of salinization and crude oil contamination on soil bacterial community structure in the Yellow River Delta region, China. Appl. Soil Ecol. 86, 165–173 (2015).

    Article  Google Scholar 

  • 52.

    Liang, Y. et al. Organic manure stimulates biological activity and barley growth in soil subject to secondary salinization. Soil Biol. Biochem. 37, 1185–1195 (2005).

    CAS  Article  Google Scholar 

  • 53.

    Yuan, B.-C., Li, Z.-Z., Liu, H., Gao, M. & Zhang, Y.-Y. Microbial biomass and activity in salt affected soils under arid conditions. Appl. Soil Ecol. 35, 319–328 (2007).

    Article  Google Scholar 

  • 54.

    Paul, E. A. & Clark, F. E. Soil Microbiology and Biochemistry (Academic Press, San Diego, 1989).

    Google Scholar 

  • 55.

    Bünemann, E. K. et al. Soil quality—a critical review. Soil Biol. Biochem. 120, 105–125 (2018).

    Article  CAS  Google Scholar 

  • 56.

    Silva, A. & Stocker, L. What is a transition? Exploring visual and textual definitions among sustainability transition networks. Glob. Environ. Change 50, 60–74 (2018).

    Article  Google Scholar 

  • 57.

    Minhas, P. S. & Gupta, R. K. Quality of Irrigation Water: Assessment and Management 123 (Indian Council of Agricultural Research, New Delhi, 1992).

    Google Scholar 

  • 58.

    Gelaye, K. K., Zehetner, F., Loiskandl, W. & Klik, A. Effects of soil texture and groundwater level on leaching of salt from saline fields in Kesem irrigation scheme, Ethiopia. Soil Water Res. 14, 221–228 (2019).

    CAS  Article  Google Scholar 

  • 59.

    Cerdà, A., Rodrigo-Comino, J., Giménez-Morera, A. & Keesstra, S. D. An economic, perception and biophysical approach to the use of oat straw as mulch in Mediterranean rainfed agriculture land. Ecol. Eng. 108, 162–171 (2017).

    Article  Google Scholar 

  • 60.

    Rodrigo-Comino, J., Davis, J., Keesstra, S. D. & Cerdà, A. Updated measurements in vineyards improves accuracy of soil erosion rates. Agron. J. 110, 411–417 (2018).

    Article  Google Scholar 

  • 61.

    Kumar, A. et al. Impact of water deficit (salt and drought) stress on physiological, biochemical and yield attributes on wheat (Triticum aestivum) varieties. Indian J. Agric. Sci. 88, 1624–1632 (2018).

    CAS  Google Scholar 

  • 62.

    Soil Survey Division Staff. Soil Survey Manual (United States Department of Agriculture, Washington. Handbook no 18, 1993).

  • 63.

    Richards, L. A. Diagnosis and Improvement of Saline and Alkali Soils 160 (Government Printing Office (Superindent of Documents), Washington, DC, 1954).

  • 64.

    Jackson, M. L. Soil Chemical Analysis 498 (Printice Hall of India Pvt Ltd., New Delhi, 1967).

    Google Scholar 

  • 65.

    Subbiah, B. V. & Asija, G. L. A rapid procedure for assessment of available nitrogen in rice soils. Curr. Sci. 25, 259–260 (1956).

    CAS  Google Scholar 

  • 66.

    Voroney, R. P. & Paul, E. A. Determination of kC and kNin situ for calibration of the chloroform fumigation-incubation method. Soil Biol. Biochem. 16, 9–14 (1984).

    CAS  Article  Google Scholar 

  • 67.

    Brookes, P. C., Landman, A., Pruden, G. & Jenkinson, D. S. Chloroform fumigation and the release of soil nitrogen: a rapid direct extraction method to measure microbial biomass nitrogen in soil. Soil Biol. Biochem. 17, 837–842 (1985).

    CAS  Article  Google Scholar 

  • 68.

    Dick, R. P., Breakwell, D. P. & Turco, R. F. Soil Enzyme activities and biodiversity measurements as integrative microbiological indicators. Methods Assess. Soil Qual. https://doi.org/10.2136/sssaspecpub49.c15 (1997).

    Article  Google Scholar 

  • 69.

    Andrews, S. S. & Carroll, C. R. Designing a soil quality assessment tool for sustainable agroecosystem management. Ecol. Appl. 11, 1573–1585 (2001).

    Article  Google Scholar 

  • 70.

    Mandal, B., Basak, N., Singha, R. S. & Biswas, S. Soil health measurement techniques. In Soil Health: Concept, Status and Monitoring (eds. Katyal, J. C. et al.) 1–98 (Indian Society of Soil Science, New Delhi. Bulletin no. 30, 2016).


  • Source: Ecology - nature.com

    Could lab-grown plant tissue ease the environmental toll of logging and agriculture?

    How to get more electric cars on the road