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Land Use, Soil Quality and Management of Soil Organic Matter

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Abstract

The Black Earth was made by grassland to suit itself. Its outstanding attributes are fertility, rapid permeability allied with generous available water capacity , and resilience in the face wind and weather. Breaking the sod in the eighteenth and nineteenth centuries, and ploughing ever since, has degraded the soil and its capacity to yield both crops and ecosystem services . A narrow focus on crop yield has created a gamut of environmental and societal problems: degradation of the uplands has rendered the land more susceptible to drought , loss of woods and meadows in bottomlands has increased vulnerability to floods. These problems are political rather than scientific. Given political will, they can be overcome: outstanding examples are the adoption of a nationwide program of soil conservation in the USA following the Dust Bowl in the late 1930s, and implementation of the Plan for the Transformation of Nature in the USSR after the 1946–1947 drought . Farmers ’ experience and long-term field experiments show soil organic matter to be an integral index of soil fertility . Over the past century, Chernozem have lost half of their organic matter ; relative to virgin soils, losses have been greater and they continue through increased mineralization caused by intensive tillage and insufficient inputs of crop residues and manure . Agriculture with a perpetual deficit of energy is not sustainable. Likewise, agriculture that neglects soil structure may well turn the steppes into desert. The regular release of plant nutrients depends on the labile fraction of soil organic matter, and stocks are maintained under crop rotations with perennial legumes and goodly dressings of farmyard manure . The greater the input of fresh organic matter, the greater the mineralization of SOM and the capacity of soil to meet crops’ nutrient demands. However, crop yields are not correlated with total SOM or, even, with the labile fraction: biochemical composition, rate of turnover and the capacity to release nutrients are the most important factors in yield formation. A diversity of crops in rotation, as opposed to continuous monoculture , increases the ability of the root system to absorb nutrients and water from soil. This reduces farmers ’ dependence on industrial inputs for crop nutrition and control of weeds , pests and diseases: poor soil quality has to be compensated by costly external inputs.

For out of olde feldes, as men seyeth,Cometh al this newe corn from yere to yere.

Geoffrey Chaucer c1374.

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References

  • Albrecht, W. (1938). Loss of soil organic matter and its restoration. In Soils and men: Yearbook of agriculture (pp. 347–360). Washington, DC: US Department of Agriculture

    Google Scholar 

  • Albrecht, W. (1942). Soil Fertility and the human species. In Chemical and engineering news. Washington, DC: American Chemical Society.

    Google Scholar 

  • Altieri, M. A. (1987). Agroecology: The scientific basis of alternative agriculture. Boulder, CO: Westview Press.

    Google Scholar 

  • Bai, Z. G., Dent, D. L., Olsson, L., & Schaepman, M. E. (2008). Proxy global assessment of land degradation. Soi Use and Management, 24, 223–234.

    Article  Google Scholar 

  • Bai, Z. G., Dent, D. L., Olsson, L., Tengberg, A. E., Tucker, C. J., & Yengoh, G. T. (2015). A longer, closer look a land degradation. Agriculture for Development, 24(1), 3–9.

    Google Scholar 

  • Balfour Lady, E. B. (1943). The living soil: Evidence of the importance of human health from soil vitality with special reference to natural planning. London: Faber and Faber.

    Google Scholar 

  • Beare, M. H., Cabrera, M. L., Hendrix, P. F., & Coleman, D. C. (1994). Aggregate-protected and unprotected organic matter pools in conventional and no-tillage soils. Soil Science Society of America Journal, 58(3), 787–795.

    Article  Google Scholar 

  • Bennett, J., & Cattle, S. (2013). Adoption of soil health improvement strategies by Australian farmers. I Attitudes, management and extension implications. Journal of Agricultural Education and Extension, 19(4), 407–426

    Google Scholar 

  • Blouin, M., Hodson, E., Delgado, G., et al. (2013). A review of earthworms’ impact on soil function and ecosystem services. European Journal of Soil Science, 64(2), 161–182.

    Article  Google Scholar 

  • Boincean, B. P. (1999). Ecological agriculture in the Republic of Moldova (crop rotation and soil organic matter). Chisinau (Russian): Stiinta.

    Google Scholar 

  • Boincean, B. P. (2015). The scientific basis for ecological restructuring of agriculture on the steppes. Agriculture for Development, 24, 26–31.

    Google Scholar 

  • Boincean, B. P. (2016). Sustainable farming systems for soil conservation and resilience to climate changes. In ESSC Conference in Cluj-Napoca, Romania, June 15–18.

    Google Scholar 

  • Boincean, B. P., Bulat, L. I., Bugaciuc, M. A., et al. (2014). Quality of soil organic matter under crop rotations and continuous cultures. In D. L. Dent (Ed.), Soil as world heritage (pp. 261–266). Dordrecht: Springer.

    Google Scholar 

  • Boonman, J., et al. (2015). Light fraction soil organic matter: Origin and contribution to net nitrogen mineralization. Soil Biology & Biochemistry, 26, 1459–1468.

    Google Scholar 

  • Cambardella, C. A., & Elliott, E. T. (1992). Particulate soil organic matter change across a grassland cultivation sequence. Soil Science Society of America Journal, 56(3), 777–783.

    Article  Google Scholar 

  • Gilyarov, M. S., & Krivolutschi, D. (1985). Life in the soil. Moscow (Russian): Molodaia.

    Google Scholar 

  • Chendev, Y. G., Sauer, T. J., Ramirez, G. H., & Burras, C. L. (2015). History of East European Chernozem soil degradation: Protection and restoration by tree windbreaks in the Russian steppe. Sustainability, 7, 705–724.

    Article  CAS  Google Scholar 

  • Crews, T. E., & Rumsey, B. E. (2017). What agriculture can learn from native ecosystems in building soil organic matter: A review. Sustainability, 9, 3–18.

    Article  Google Scholar 

  • Crutzen, P., Mosier, A., Smith, K., & Winiwarter, W. (2008). N2O release from agro-biofuel production negates warming reduction by replacing fossil fuels. Atmospheric Chemistry and Physics, 8(2), 389–395.

    Article  CAS  Google Scholar 

  • Culman, S., Snapp, S., & Gentry, L. (2013). Short- and long-term labile soil carbon and nitrogen dynamics reflect management and predict corn agronomic performance. Agronomy Journal, 105, 493–502.

    Article  CAS  Google Scholar 

  • Darwin, C. R. (1881). The formation of vegetable mould through the action of worms with observations on their habits. London: John Murray.

    Book  Google Scholar 

  • Delgado-Baquerizo, M., Grinyer, J., Reich, P., & Singh, B. (2016). Relative importance of soil properties and microbial community for soil functionality: Insights from a microbial swap experiment. Functional Ecology, 2–12.

    Google Scholar 

  • Dent, D. L. (2019). Assessment of soil health. Draft British Standard, in preparation.

    Google Scholar 

  • Dokuchaev, V. V. 1892. Our steppes before and now, reprinted in Collected works 1936

    Google Scholar 

  • Dokuchaev, V.V. (1948). Selected works, Vol. 1. Moscow (Russian): OGIZ, State Publisher of Agricultural Literature.

    Google Scholar 

  • Doran, J., & Zeiss, M. (2000). Soil health and sustainability: managing the biotic component of soil quality. Applied Soil Ecology, 15, 3–11.

    Article  Google Scholar 

  • Doran, J., Sarantonio, M., & Liebig, M. (1996). Soil health and sustainability. Advances in Agronomy, 56.

    Google Scholar 

  • Fontaine, S., Barot, S., Barré, P., et al. (2007). Stability of organic carbon in deep soil layers controlled by fresh carbon supply. Nature Letters, 450, 277–281.

    Article  CAS  Google Scholar 

  • Ganjara, N. (1988). Humus formation and agronomic evaluation of soil organic matter of podzols and Chernozem soils from the European part of USSR. Thesis, Doctor of Science. Moscow (Russian).

    Google Scholar 

  • Glover, J., Cox, C., & Reganold, J. (2007). Future farming: a return to roots? Large-scale agriculture would become more sustainable if major crops plants lived for years and built deep root systems. Scientific American, 82–89.

    Google Scholar 

  • Gregorich, E. G., Drury, C. F., & Beldock, J. (2001). Changes in soil carbon under long-term maize in monoculture and legume-based rotation. Canadian Journal of Soil Science, 81, 21–31.

    Article  CAS  Google Scholar 

  • Hamza, M., & Anderson, W. (2005). Soil compaction in cropping systems: A review of the nature, causes and possible solutions. Soil Tillage Research, 82, 121–145.

    Article  Google Scholar 

  • Hooke, R., & Martin-Duque, J. F. (2012). Land transformation by humans: A review. GSA Today, 22(12), 4–9.

    Article  Google Scholar 

  • Howard Sir, A. (1943). An agricultural testament. Oxford University Press.

    Google Scholar 

  • Izmailski, A. (1937). How our steppes dried. OGIZ-Selihozgiz, Moscow-Leningrad (Russian).

    Google Scholar 

  • FAO/IIASA/ISRIC/ISSCAS/JRC. (2013). Harmonised world soil database. Rome, Laxenberg: FAO, IIASA.

    Google Scholar 

  • IUSS Working Group WRB 2015 World reference base for soil resources, update. (2015). FAO world soil resources report 106. Rome: Food and Agriculture Organization of the United Nations.

    Google Scholar 

  • Jacks GV 1954 Soil. Nelson, Edinburgh

    Google Scholar 

  • Jackson, R. B., Mooney, H. A., & Schulze, E. D. (1997). A global budget for fine root biomass, surface area and nutrient content. Proceedings of the National Academy of Sciences, 94(14), 7362–7366.

    Article  CAS  Google Scholar 

  • Jenkinson, D., & Rayner, J. (1977). The turnover of soil organic matter in some of the Rothamsted classical experiments. Soil Science, 123, 298–305.

    Article  CAS  Google Scholar 

  • Jenny, H. (1941). The factors of soil formation: a system of quantitative pedology. New York: Dover Publications.

    Book  Google Scholar 

  • Kennedy, A., & Smith, K. (1995). Soil microbial diversity and the sustainability of agricultural soils. Plant and Soil, 170(1), 75–86.

    Article  CAS  Google Scholar 

  • Kononova, M. N. (1963). Soil organic matter. Moscow (Russian): Academy of Sciences of USSR.

    Google Scholar 

  • Kosticev, P. (1949). Soils of Chernozem regions in Russia. Moscow (Russian): State Publisher of Agricultural Literature.

    Google Scholar 

  • Kovda, V. A. (Ed.). (1983). Russian Chernozem 100 years after Dokuchaev. Moscow (Russian): Nauka.

    Google Scholar 

  • Kraemer, R., Prishchepov, A. V., Müller, D., et al. (2007). Long-term agricultural land-cover change and potential for crop land expansion in the former virgin lands area of Kazakhstan. Environment Research Letters, 10, 5.

    Google Scholar 

  • Krupenikov, I. A., Boincean, B. P., & Dent, D. L. (2011). The black earth: Ecological principles for sustainable agriculture on Chernozem soils. Dordrecht: Springer.

    Google Scholar 

  • Kuznetova, I. (1977). Agrophysical properties of sod-podzolic soils. Pochvovedenie, 9 (Russian).

    Google Scholar 

  • Likov, A. M. (1977). Soil organic matter and fertility of sod podzolic soils in the conditions of intensive agriculture. Thesis, Doctor of Agricultural Sciences, Moscow (Russian).

    Google Scholar 

  • Likov, A. M. (1979). On the calculation of humus balance in intensive agriculture. Izvestia of Moscow Timiryazev Agricultural Academy, 6, 14–20 (Russian).

    Google Scholar 

  • Liu, C., Lu, M., Cui, J., et al. (2014). Effects of straw-carbon input on carbon dynamics in agricultural soils: A meta-analysis. Global Change Biology, 20(5), 1366–1381.

    Article  Google Scholar 

  • Mikhailova, E. A., Bryant, R. B., Vassenev, I. I., et al. (2000). Cultivation effects on soil carbon and nitrogen contents at depth in the Russian Chernozem. Soil Science Society of America Journal, 64, 738–745.

    Article  CAS  Google Scholar 

  • Moon, D. (2008). The Russian steppes: An environmental history. CRCEES Working papers, Toronto.

    Google Scholar 

  • Moon, D. (2013). The plough that broke the steppes. Agriculture and environment on Russia’s grasslands 1780–1914. Oxford University Press.

    Google Scholar 

  • Ponomareva, V., & Plotnikova, T. (1980). Humus and soil formation (methods and research results). Leningrad (Russian): Nauka.

    Google Scholar 

  • Powlson, D. S., Gregory, P. J., Whalley, W. R., et al. (2011). Soil management in relation to sustainable agriculture and ecosystem services. Food Policy, 36, 72–87.

    Article  Google Scholar 

  • Quinn, A., Fernando, J., & Georgia, D. (2015). Dissecting the ecosystem service of large-scale pollutant retention: The role of wetlands and other landscape features. Ambio, 44(1), 127–137.

    Article  Google Scholar 

  • Ramenski, L. (1971). Selected works. Nauka, Leningrad (Russian): Problems and methods of studying vegetative cover.

    Google Scholar 

  • Reganold, J., Jackson-Smith, D., Batie, S., et al. (2011). Transforming US agriculture. Policy forum. Science, 332(6030), 670–672.

    Article  CAS  Google Scholar 

  • Rillig, M. C., & Mummey, D. L. (2006). Mycorrhizas and soil structure. Tansley review. New Phytologist, 171(1), 41–53.

    Article  CAS  Google Scholar 

  • Rumpel, C., & Kögel-Knabner, I. (2011). Deep-soil organic matter—A key but poorly understood component of the terrestrial carbon cycle. Plant and Soil, 338(1–2), 143–158.

    Article  CAS  Google Scholar 

  • Six, J., Elliott, E., Paustian, K., & Doran, J. (1998). Aggregation and soil organic matter accumulation in cultivated and native grassland soils. Soil Science Society of America Journal, 62, 1367–1377.

    Article  CAS  Google Scholar 

  • Six, J., Elliott, E., & Paustian, K. (2000). Soil macroaggregate turnover and microaggregate formation: a mechanism for carbon sequestration under no-tillage agriculture. Soil Biology and Biochemistry, 32, 2099–2103.

    Google Scholar 

  • Six, J., Conant, R., Paul, E., & Paustian, K. (2002). Stabilization mechanisms of soil organic matter implications for C-saturation of soils. Plant and Soil, 241, 155–176.

    Google Scholar 

  • Soil Survey Staff. (2017). Keys to soil taxonomy (12th edn). Washington, DC: United States Department of Agriculture, Natural Resources Conservation Service.

    Google Scholar 

  • Sokolovski, A. R. (1956). Agricultural soil science. Moscow (Russian): Selihozgiz.

    Google Scholar 

  • Sparling, G. P. (1992). Ratio of microbial biomass carbon to soil organic carbon as a sensitive indicator of changes in soil organic matter. Australian Journal of Soil Research, 30, 195–207.

    Article  CAS  Google Scholar 

  • Sukachev, V. N. (1975). Selected works: Problems of phytocenology. Moscow/Leningrad (Russian): Nauka.

    Google Scholar 

  • Tiurin, I. V. (1965). Soil organic matter and it role in soil fertility. Moscow (Russian): Nauka.

    Google Scholar 

  • Vernadsky, V. (1967). Biosphere(selected works on Biogeochemistry). Moscow (Russian): Nauka.

    Google Scholar 

  • Williams, V. R. (1950–1952). Selected works (vol. 5–10). Moscow (Russian): State Publisher of Agricultural Literature.

    Google Scholar 

Download references

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Boincean, B., Dent, D. (2019). Land Use, Soil Quality and Management of Soil Organic Matter. In: Farming the Black Earth. Springer, Cham. https://doi.org/10.1007/978-3-030-22533-9_3

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