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Concept of Soil Organic Carbon Stock


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1 School of Natural Resource Management, College of Post Graduate Studies in Agricultural Sciences, Central Agriculture University, Umiam (Meghalaya), India
     

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Soil organic carbon (SOC) controls ecosystem and agro-ecosystem function, influencing soil fertility, water holding capacity and many other functions. The total amount of C stored in the surface soil is higher than sub surface soil area. It is estimated that the amount of C in the atmospheric pool is about 766 Pg C and about 566 Pg C in living vegetation. It is also of global importance because of its role in the global carbon cycle and therefore, the part it plays in the mitigation of atmospheric levels of greenhouse gases (GHGs). Different factors such as topography, climate, and soil physico-chemical properties also effect SOC stock in soil. Past long-term experimental studies have shown that soil organic C is highly sensitive to changes in land use, with changes from native ecosystems such as forest or grassland to agricultural systems almost always resulting in a loss of SOC. Land use change in different part of the world has also been observed to influence SOC stocks in different depth of the soil. Proper management of land use and land management practices and application of fertilizers, organic compost and manures could leads to greater C-storage in the soil, improves soil fertility and crop yield.

Keywords

Organic Carbon, Ecosystem, Carbon Cycle, Greenhouse Gases, C-Storage.
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  • Ahmad, H., Athar, F. and Manochehr, G. (2010). Carbon sequestration under different physiographic and climatic conditions in north Karaj river basin. In: 19th World congress of soil science: Soil solutions for a changing world, Brisbane, Australia, pp. 9-11.
  • Batjes, N.H. (1996). Total carbon and nitrogen in the soils of the world. European J. Soil Sci., 47 (2):151-163.
  • Batjes, N.H. and Sombroek, W.G. (1997). Possibilities for carbon sequestration in tropical and sub-tropical soils. Global Change Biology, 3 (2):161-173.
  • Bhattacharyya, T., Pal, D. K., Mandal, C. and Velayutham, M. (2000). Organic carbon stock in Indian soils and their geographical distribution. Current Science, 5 (79): 655-660.
  • Burke, I.C., Yonker, C.M., Parton, W.J., Cole, C.V., Flach, K. and Schimel, D.S. (1989). Texture, climate and cultivation effects on soil organic matter content in U.S. grassland soils. Soil Science Society of America J., 53(3):800-805.
  • Cheng Ji, W., Gen Xing, P., You Guo, T., Lian Qing, L., Xu Hui, Z. and Xiao Jun, H. (2010). Changes in cropland topsoil organic carbon with different fertilizations under long-term agro-ecosystem experiments across mainland China. Sci. China, 53 (7): 858–867.
  • Cole, C.V., Duxbury, J., Freney, J., Heinemeyer, O., Minami, K., Mosier, A., Paustian, K., Rosenberg, N., Sampson, N., Sauerbeck, D. and Zhao, Q. (1997). Global estimates of potential mitigation of greenhouse gas emissions by agriculture. Nutr. Cycling Agroecosyst., 49:221–228. doi:10.1023/A:1009731711346.
  • Creed, I.F., Webster, K.L., Braun, G.L., Bourbonniere, R.A., Beall, F.D. (2013).Topographically regulated traps of dissolved organic carbon create hotspots of soil carbon dioxide efflux in forests. Biogeochem., 112: 149–164.
  • Dawson, J.J.C. and Smith, P. (2007). Carbon losses from soil and its consequences for land-use management. Sci. Total Environ., 382(2-3): 165-190. DOI: 10.1016/j.scitotenv. 2007.03.023.
  • Deng, L., Zhu,G., Tang, Z.S. and Shangguan, Z.P. (2016). Global patterns of the effects of land-use changes on soil carbon stocks. Global Eco. & Conserv., 5 : 127–138.
  • Duffera, M., White, J.G. and Weisz, R. (2007). Spatial variability of South-eastern U.S. Coastal Plain soil physical properties: Implications for site-specific management. Geoderma, 137(3-4): 327-339.
  • Dorji, T., Odeh, I.O.A. and Damien, J. (2014). Field vertical distribution of soil organic carbon density in relation to land use/cover, altitude and slope aspect in the Eastern Himalayas. Land, 3 : 1232-1250.
  • Fissore, C., Dalzell, B.J., Berhe, A.A., Voegtle, M., Evans, M. and Wu, A. (2017). Influence of topography on soil organic carbon dynamics in a Southern California grassland. Catena, 149 : 140–149.
  • Food and Agriculture Organization (2008). Technical re- view of FAO’s approach and methods for National Forest Monitoring and Assessment (NFMA). National Forest monitoring and Assessment Working Paper, Rome, Italy.
  • Ge, S., Xu, H., Ji, M. and Jiang, Y. (2013). Characteristics of soil organic carbon, total nitrogen and C/N ratio in chinese apple orchards. Open J.Soil Sci., 3 : 213-217.
  • Hoover, C.M. (2003). Soil carbon sequestration and forest management: Challenges and opportunities. In: Kimble et al. (ed) The potential of U.S. forest soils to sequester carbon and mitigate the greenhouse effect. CRC Press, Boca Raton, Fla, pp. 211–238.
  • Jobbágy, E.G. and Jackson, R.B. (2000). The vertical distribution of soil organic C and its relation to climate and vegetation. Ecological Applications, 10 : 423-436.
  • Jones, D.L., Nguyen, C. and Finlay, R.D. (2009). Carbon flow in the rhizosphere: carbon trading at the soil–ischolar_main interface. Plant Soil, 321 : 50-33.
  • Kane, D. (2015).Carbon sequestration potential on agricultural lands: A Review of current science and available practices. In: Association with: National sustainable agriculture coalition breakthrough strategies and solutions, LLC. pp.1-35.
  • Lal, R. (2004). Soil carbon sequestration in India. Climatic Change, 65: 277-296.
  • Lemenih, M. (2004).Effects of land use changes on soil quality and native flora degradation and restoration in the highlands of Ethiopia implications for sustainable land management. Thesis, Swedish University of Agricultural Sciences, Almas Allé 8, 750 07, Uppsala.
  • Matus, F., Rumpel, C., Neculman, R., Panichini, M. and Mora, M.L. (2014). Soil carbon storage and stabilisation in andic soils: A review, Catena, 120 : 102-110, https://doi.org/10.1016/ j.catena.2014.04.008.
  • Morgan, J.A., Follett, R.F., Allen, L.H., Grosso, J.S.D., Derner, J.D., Dijkstra, F., Franzluebbers, A., Fry, R., Paustian, K. and Schoeneberger, M.M. (2010). Carbon sequestration in agricultural lands of the United States. J. Soil & Water Conserv., 65 (1) : 6-13.
  • Oueslati, I., Allamano, P., Bonifacio, E. and Claps, P. (2011). Vegetation and topographic control on the spatial variability of soil organic carbon. Pedosphere, 23 (1) : 48-58.
  • Post, W.M., Emanuel, W.R., Zinke, P.J. and Stangenberger, A.G. (1982). Soil carbon pools and world life zones. Nature, 298 : 156-159.
  • Post, W.M. and Kwon, K.C. (2000). Soil carbon sequestration and land-use change: processes and potential. Global Change Bio., 6 : 317-327.
  • Rasse, D.P., Dignac, M.F., Bahri, H., Rumpel, C., Mariotti, A. and Chenu, C. (2006). Lignin turn over in an agricultural field: from plant residues to soil-protected fractions. European J. Soil Sci., 57: 530-538.
  • Saree, S., Ponphang, P., Sarobol, E., Limtong, P. and Chidthaisong, A. (2012). Soil carbon sequestration affected by cropping changes from upland maize to flooded rice cultivation. J. Sustain. Energy & Environ., 3 : 147-152.
  • Schlesinger, W.H. (2000). C sequestration in soils: some cautions amidst optimisms. Agriculture Ecosystems & Environment, 82 : 121-127.
  • Sombroek, W.G., Nachtergaele, F.O. and Hebel, A. (1993). Amounts, dynamics and sequestering of carbon in tropical and sub-tropical soils. Ambio, 22 (7): 417-426.
  • Tan, Z.X. and Lal, R. (2005). Carbon sequestration potential estimates with changes inland use and tillage practice in Ohio, USA. Agr. Ecosyst. Environ., 111: 140–152.
  • Thomas, G.A., Dalal, R.C. and Standley, J. (2007). No-till effects on organic matter, pH, cation exchange capacity and nutrient distribution in a Luvisol in the semi-arid subtropics. Soil & Tillage Research, 94 : 295-304.
  • Van Keulen, H. (2001). Soil organic matter modelling: problems and prospects. Nutr. Cycling Agroecosystems, 61(1-2): 33-39.
  • Webster, K.L., Creed, I.F., Beall, F.D. and Bourbonniere, R.A. (2011). A topographic template for estimating soil carbon pools in forested catchments. Geoderma, 160 : 457–467.
  • Yigini, Y. and Panagos, P. (2016). Assessment of soil organic carbon stocks under future climate and land cover changes in Europe. Sci. Total Env., 557–558 : 838–850.
  • Yohannes, H., Soromessa, T. and Argaw, M. (2015). Carbon stock analysis along slope and slope aspect gradient in gedo forest: Implications for climate change mitigation. Earth Sci. Clim. Change, 6 : 9.
  • Zeraatpishe, M. and Khormali, F. (2012). Carbon stock and mineral factors controlling soil organic carbon in a climatic gradient, Golestan province. J. Soil Sci. & Plant Nutr., 12 (4): 637 - 654.
  • Zhang, Z., Zhou,Y., Wang, S.and Huang, X. (2018). Comparing estimation methods for soil organic carbon storage in small karst watersheds. Pol. J. Environ. Stud., 27(4):1879-1890.

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  • Concept of Soil Organic Carbon Stock

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Authors

Kabir Debbarma
School of Natural Resource Management, College of Post Graduate Studies in Agricultural Sciences, Central Agriculture University, Umiam (Meghalaya), India

Abstract


Soil organic carbon (SOC) controls ecosystem and agro-ecosystem function, influencing soil fertility, water holding capacity and many other functions. The total amount of C stored in the surface soil is higher than sub surface soil area. It is estimated that the amount of C in the atmospheric pool is about 766 Pg C and about 566 Pg C in living vegetation. It is also of global importance because of its role in the global carbon cycle and therefore, the part it plays in the mitigation of atmospheric levels of greenhouse gases (GHGs). Different factors such as topography, climate, and soil physico-chemical properties also effect SOC stock in soil. Past long-term experimental studies have shown that soil organic C is highly sensitive to changes in land use, with changes from native ecosystems such as forest or grassland to agricultural systems almost always resulting in a loss of SOC. Land use change in different part of the world has also been observed to influence SOC stocks in different depth of the soil. Proper management of land use and land management practices and application of fertilizers, organic compost and manures could leads to greater C-storage in the soil, improves soil fertility and crop yield.

Keywords


Organic Carbon, Ecosystem, Carbon Cycle, Greenhouse Gases, C-Storage.

References