Skip to main content

Soils and Food Sufficiency: A Review

  • Chapter
  • First Online:

Abstract

Soil degradation, caused by land misuse and soil mismanagement, has plagued humanity since the dawn of settled agriculture. Many once thriving civilizations collapsed due to erosion, salinization, nutrient depletion and other soil degradation processes. The Green Revolution of the 1960s and 1970s, that saved hundreds of millions from starvation in Asia and elsewhere, by-passed Sub-Saharan Africa. This remains the only region in the world where the number of hungry and food-insecure populations will still be on the increase even by 2020. The serious technological and political challenges are being exacerbated by the rising energy costs. Resource-poor and small-size land-holders can neither afford the expensive input nor are they sure of their effectiveness because of degraded soils and the harsh, changing climate. Consequently, crop yields are adversely impacted by accelerated erosion, and depletion of soil organic matter (SOM) and nutrients because of the extractive farming practices. Low crop yields, despite growing improved varieties, are due to the severe soil degradation, especially the low SOM reserves and poor soil structure that aggravate drought stress. Components of recommended technology include: no-till; residue mulch and cover crops; integrated nutrient management; and biochar used in conjunction with improved crops (genetically modified, biotechnology) and cropping systems, and energy plantation for biofuel production. However, its low acceptance, e.g., for no-till farming, is due to a range of biophysical, social and economic factors. Competing uses of crop residues for other needs is among numerous factors limiting the adoption of no-till farming. Creating another income stream for resource-poor farmers, through payments for ecosystem services, e.g., C sequestration in terrestrial ecosystems, is an important strategy for promoting the adoption of recommended technologies. Adoption of improved soil management practices is essential to adapt to the changing climate, and meeting the needs of growing populations for food, fodder, fuel and fabrics. Soil restoration and sustainable management are essential to achieving food security, and global peace and stability.

This is a preview of subscription content, log in via an institution.

Buying options

Chapter
USD   29.95
Price excludes VAT (USA)
  • Available as PDF
  • Read on any device
  • Instant download
  • Own it forever
eBook
USD   349.00
Price excludes VAT (USA)
  • Available as EPUB and PDF
  • Read on any device
  • Instant download
  • Own it forever
Softcover Book
USD   449.99
Price excludes VAT (USA)
  • Compact, lightweight edition
  • Dispatched in 3 to 5 business days
  • Free shipping worldwide - see info
Hardcover Book
USD   449.99
Price excludes VAT (USA)
  • Durable hardcover edition
  • Dispatched in 3 to 5 business days
  • Free shipping worldwide - see info

Tax calculation will be finalised at checkout

Purchases are for personal use only

Learn about institutional subscriptions

References

  • Abate T., van Huis A., Ampofo J.K.O. (2000) Pest management strategies in traditional agriculture: an African perspective, Annu. Rev. Entomol. 45, 631–659.

    PubMed  CAS  Google Scholar 

  • Alemu G., Bayu W. (2005) Effects of farmyard manure and combined N and P fertilizer on sorghum and soil characteristics in northeastern Ethiopia, J. Sustain. Agric. 26, 23.

    Google Scholar 

  • Amalu U.C. (2002) Food security: sustainable food production in Sub-Saharan Africa, Outlook Agr. 31, 177–185.

    Google Scholar 

  • Andrianov B.V. (1989) The ancient irrigation systems or the Aral Sea Region, Études Rurales 115–116, 177–193.

    Google Scholar 

  • Aune J., Lal R. (1998) Agricultural productivity in the tropics and critical limits of properties of Oxisols, Ultisols, and Alfisols, Trop. Agric. (Trinidad) 74, 96–103.

    Google Scholar 

  • Baker J.M., Ochsner T.E., Venterea R.T., Griffs T.J. (2007) Tillage and soil carbon sequestration: what do we really know? Agr. Ecosyst. Environ. 118, 1–5.

    CAS  Google Scholar 

  • Basamba T.A., Barrios E., Amezquita E., Rao I.M., Singh B.R. (2006) Tillage effects on maize yield in a Colombian savanna Oxisol: soil organic matter and P fractions, Soil Till. Res. 91, 131–142.

    Google Scholar 

  • Battershill M.R.J., Gilg A.W. (1998) Traditional low-intensity farming: evidence of the role of vente directe in supporting such farms in northwest France, and some implication for conservation policy, J. Rural Studies 14, 475–486.

    Google Scholar 

  • Bayer C. (2006) Carbon sequestration in two Brazilian Cerrado soils under no-till, Soil Till. Res. 86, 237–245.

    Google Scholar 

  • Berger G.W. (2004) “Photonic dating of prehistoric irrigation canals of Phoenix, Arizona, U.S.A.”, Geoarchaeology 19, 381.

    Google Scholar 

  • Bescansa P., Imaz M.J., Virto I., Enrique A., Hoogmoed W.B. (2006) Soil water retention as affected by tillage and residue management in semiarid Spain, Soil Till. Res. 87, 19–27.

    Google Scholar 

  • Bessam F., Mrabet R. (2003) Long-term changes in soil organic matter under conventional tillage and no-tillage systems in semiarid Morocco, Soil Use Manage. 19, 139–143.

    Google Scholar 

  • Blanco-Canqui H., Lal R. (2007) Soil and crop response to harvesting corn residues for biofuel production, Geoderma 141, 355–362.

    CAS  Google Scholar 

  • Blanco-Canqui H., Lal R. (2008) No-tillage and soil profile carbon sequestration: an on-farm assessment, Soil Sci. Soc. Am. J. 72, 693–701.

    CAS  Google Scholar 

  • Blanco-Canqui H., Lal R., Owens L.B., Post W.M., Shipitalo M.J. (2007b) Soil hydraulic properties influenced by stover removal from no-till corn in Ohio, Soil Till. Res. 92, 144–154.

    Google Scholar 

  • Borlaug N. (2007) Feeding a hungry world, Science 318, 359.

    PubMed  CAS  Google Scholar 

  • Bostick W.M., Bado V.B., Bationo A., Soler C.T., Hoogenboom G., Jones J.W. (2007) Soil carbon dynamics and crop residue yields of cropping systems in the Northern Guinea Savanna of Burkina Faso, Soil Till. Res. 93, 138–151.

    Google Scholar 

  • Broecker W.S. (2007) CO2 arithmetic, Science 315, 1371.

    PubMed  CAS  Google Scholar 

  • Brown L.R. (2008) Why ethanol production will drive world food prices even higher in 2008, Earth Policy Institute, 24th January 2008, New York, NY.

    Google Scholar 

  • Brye K.R., Cordell M.L., Longer D.E., Gbur E.E. (2006) Residue management practice effects on soil surface properties in a young wheat-soybean double-crop system, J. Sustain. Agr. 29, 121–150.

    Google Scholar 

  • Bunney S. (1990) Prehistoric farming caused devastating soil-erosion, New Sci. 125, 29.

    Google Scholar 

  • Campbell C.A., Vanden Bygaart A.J., Zentner R.P., McConkey B.G., Smith W., Lemke R., et al. (2007) Quantifying carbon sequestration in a minimum tillage crop rotation study in semiarid southwester Saskatchewan, Can. J. Soil Sci. 87, 235–250.

    CAS  Google Scholar 

  • Canadell J.G., Le Quéré C., Raupach M.R., Field C.B., Buitenhuis E.T., Clais P., et al. (2007) Contributions to acceleration atmospherics CO2 growth from economic activity carbon intensity and efficiency of natural sinks, Available from URL: http://www.pnas.org/cgi/doi/10.1973/pnas.0702737104.

  • Chan K.Y., van Zwieten L., Meszaros I., Downie A., Joseph S. (2007) Agronomic value of greenwaste biochar as a soil amendment, Aust. J. Soil Res. 45, 629–634.

    CAS  Google Scholar 

  • Chen D., Molina J.A.E., Clapp C.E., Venterea R.T., Palazzo A.J. (2005) Corn root influence on automated measurement of soil carbon dioxide concentrations, Soil Sci. 170, 779–787.

    CAS  Google Scholar 

  • Chokor B.A., Odemerho F.O. (1994) Land degradation assessment by small-scale traditional African farmers and implications for sustainable conservation management, Geoforum 25, 145–154.

    Google Scholar 

  • Clawson M. (1979) Forest in the long sweep of American history, Science 204, 1168–1174.

    PubMed  CAS  Google Scholar 

  • Clement R.M., Horn S.P. (2001) Pre-Columbian land-use history in Costa Rica: a 3000-year record of forest clearance, agriculture and fires from Laguna Zoncho, Holocene 11, 419–426.

    Google Scholar 

  • Cline W.R. (2007) Global warming and agriculture, Center for Global Development, Peterson Institute for International Economics, Washington, DC, 186 p.

    Google Scholar 

  • Cochran R.L., Collins H.P., Kennedy A., Bezdicek D.F. (2007) Soil carbon pools and fluxes after land conversion in a semiarid shrub-steppe ecosystem, Biol. Fert. Soils 43, 479–489.

    CAS  Google Scholar 

  • Coppens F., Garnier P., De Gryze S., Merckx R., Recous S. (2006) Soil moisture, carbon and nitrogen dynamics following incorporation and surface application of labeled crop residues in soil columns, Eur. J. Soil Sci. 57, 894–905.

    CAS  Google Scholar 

  • Dakora F.D., Keya S.O. (1997) Contribution of legume nitrogen fixation to sustainable agriculture in Sub-Saharan Africa, Soil Biol. Biochem. 29, 5–6; 809–817.

    CAS  Google Scholar 

  • De Bona F.D., Bayer C., Bergamaschi H., Dieckow J. (2006) Soil organic carbon in sprinkler irrigation systems under no-till and conventional tillage, Revista Brasileira De Ciencia Do Solo 30, 911–919.

    Google Scholar 

  • De Gryze S., Six J., Merckx R. (2006) Quantifying water-stable soil aggregate turnover and its implication for soil organic matter dynamics in a model study, Eur. J. Soil Sci. 57, 693–707.

    Google Scholar 

  • den Biggelaar C., Lal R., Wiebe K., Eswaran H., Breneman V. (2003a) The global impact of soil erosion on productivity. I. Absolute and relative erosion-induced yield losses, Adv. Agron. 81, 1–48.

    Google Scholar 

  • den Biggelaar C., Lal R., Wiebe K., Eswaran H., Breneman V. (2003b) The global impact of soil erosion and productivity. II. Effects on crop yield and production over time, Adv. Agron. 81, 49–95.

    Google Scholar 

  • Derpsch R. (2007) No-tillage and conservation agriculture, in: Goddard T., Zoebirsh M., Gan Y., Ellis W., Watson A., Sombatpanit S. (Eds.), “No-till Farming Systems”, WASWC Special Publ. #3, Bangkok, Thailand, pp. 7–39.

    Google Scholar 

  • Diamond J.R. (2004) Collapse: How Societies Choose to Fail or Succeed, New York: Viking Adult.

    Google Scholar 

  • Dickens A.F., Gelinas Y., Masiello C.A., Wakeham S., Hedges J.I. (2004) Reburial of fossil carbon in marine sediments, Nature 427, 336–339.

    PubMed  CAS  Google Scholar 

  • Dou F.G., Hons F.M. (2006) Tillage and nitrogen effects on soil organic matter fractions in wheat-based systems, Soil Sci. Soc. Am. J. 70, 1896–1905.

    CAS  Google Scholar 

  • Duncan A. (1998) The food security challenge for southern Africa, Food Policy 23, 459–475.

    Google Scholar 

  • Dyson F.J. (1977) Can we control the carbon dioxide in the atmosphere? Energy 2, 287–291.

    Google Scholar 

  • Eickhout B, Bouwman A.F., van Zeijts H. (2006) The role of nitrogen in world food production and environmental sustainability, Agr. Ecosyst. Environ. 116, 4–14.

    CAS  Google Scholar 

  • Elder J.W., Lal R. (2008a) Tillage effects on physical properties of agricultural organic soils of north central Ohio, Soil Till. Res. 98, 208–210.

    Google Scholar 

  • Elder J.W., Lal R. (2008b) Tillage effects on gaseous emissions from an intensively farmed organic soil in north central Ohio, Soil Till. Res. 98, 45–55.

    Google Scholar 

  • Ellis E.C., Wang S.M. (1997) Sustainable traditional agriculture in the Tai Lake Region of China, Agr. Ecosyst. Environ. 61, 177–193.

    Google Scholar 

  • Erickson C.L. (1992) Prehistoric landscape management in the Andean Highlands – raised field agriculture and its environmental-impact, Population Environ. 13, 285–300.

    Google Scholar 

  • FAO (1953–2004) Production Yearbooks, FAO, Rome, Italy.

    Google Scholar 

  • FAO (2004) Production Year Book, FAO, Rome, Italy.

    Google Scholar 

  • FAO (2006) The State of Food Security in the World, FAO, Rome, Italy.

    Google Scholar 

  • FAO (2007) The State of Food and Agriculture: Paying farmers for environmental services, FAO, Rome, Italy.

    Google Scholar 

  • Flugge F., Abadi A. (2006) Farming carbon: an economic analysis of agroforestry for carbon sequestration and dryland salinity reduction in Western Australia, Agroforest. Syst. 68, 181–192.

    Google Scholar 

  • Fowles M. (2007) Black carbon sequestration as an alternative to bioenergy, Biomass Bioenerg. 31, 426–432.

    CAS  Google Scholar 

  • Gbetibouo G.A., Hassan R.M. (2005) Measuring the economic impact of climate change on major South African field crops: a Ricardian approach, Global Planet. Change 47, 143–152.

    Google Scholar 

  • Gesch R.W., Reicosky D.C., Gilbert R.A., Morris D.R. (2007) Influence of tillage and plant residue management on respiration of a Florida Everglades Histosol, Soil Till. Res. 92, 156–166.

    Google Scholar 

  • Ghosh P.K., Manna M.C., Dayal D., Wanjari R.H. (2006) Carbon sequestration potential and sustainable yield index for groundnut- and fallow-based cropping systems, J. Agr. Sci. 144, 249–259.

    CAS  Google Scholar 

  • Gladwin C.H., Thomson A.M., Peterson J.S., Anderson A.S. (2001) Addressing food security in Africa via multiple livelihood strategies of women farmers, Food Policy 26, 177–207.

    Google Scholar 

  • Gleason R.A., Euliss N.H., McDougal R.L., Kermes K.E., Steadman E.N. (2005) Potential of restored prairie wetlands in the glaciated North American prairie to sequester atmospheric carbon. Plains CO2 Reduction Partnership Topical Repot August 2005, Energy and Environmental Research Center, Grand Forks, North Dakota.

    Google Scholar 

  • Goldemberg J. (2007) Ethanol for sustainable energy future, Science 315, 808–810.

    PubMed  CAS  Google Scholar 

  • Goldemberg J., Johansson T.B., Reddy A.K.N., Williams R.H. (2004) A global clean cooking fuel initiative, Energ. Sustain. Dev. 8, 5–12.

    Google Scholar 

  • Goman M., Byrne R. (1998) A 5000 year record of agriculture and tropical forest clearance in the Tuxtdas, Veracruz, Mexico, Holocene 8, 83–89.

    Google Scholar 

  • Goulding K., Jarvis S., Whitmore A. (2007) Optimizing nutrient management for farm systems, Philos. T. Roy. Soc. B, DOI: 10.1098/rstb.2007.2177.

    Google Scholar 

  • Govaerts B., Sayre K.D., Ceballos-Ramirez J.M., Luna-Guido M.L., Limon-Ortega A., Deckers J., Dendooven L. (2006) Conventionally tilled and permanent raised beds with different crop residue management: Effects on soil C and N dynamics. Plant Soil 280, 143.

    CAS  Google Scholar 

  • Govaerts B., Sayre K.D., Lichter K., Dendooven L., Deckers J. (2007) Influence of permanent raised bed planting and residue management on physical and chemical soil quality in rain fed maize/wheat systems, Plant Soil 291, 39–54.

    CAS  Google Scholar 

  • Grandy A.S., Robertson G.P. (2007) Land-use intensity effects on soil organic carbon accumulation rates and mechanisms, Ecosystems 10, 58–73.

    CAS  Google Scholar 

  • Gregorich E.G., Beare M.H., Mckim U.F., Skjemstad J.O. (2006) Chemical and biological characteristics of physically uncomplexed organic matter, Soil Sci. Soc. Am. J. 70, 975–985.

    CAS  Google Scholar 

  • Groenfeldt D. (1991) Building on tradition: indigenous irrigation knowledge and sustainable development in Asia, Agr. Human Values 8, 114–120.

    Google Scholar 

  • Hao Y., Lal R., Owens L., Izaurralde R.C., Post M., Hothem D. (2002) Effects of cropland management and slope position on soil organic carbon pools at the North Appalachian Experimental Watersheds, Soil Till. Res. 68, 83–88.

    Google Scholar 

  • Hartshorn A.S., Chadwick O.A., Vitousek P.M., Kirch P.V. (2006) Prehistoric agricultural depletion of soil nutrients in Hawaii, Proc. Nat. Acad. Sci. USA 103, 11092–11097.

    PubMed  CAS  Google Scholar 

  • Hazell P., Wood S. (2007) Drivers of change in global agriculture, Philos. T. Roy. Soc. B, DOI: 10.1098/rstb.2007.2166.

    Google Scholar 

  • Henao J., Baanante C. (2006) Agricultureal production and soil nutrient mining in Africa: Implications for resource conservation and policy development, IFDC, Muscle Shoals, Al (http://www.ifdc.org).

  • Highman C.F.W., Kijngam A., Manly B.F.J., Moore S.J.E. (1981) The bovid third phalanx and prehistoric ploughing, J. Archaeologic. Sci. 8, 353–365.

    Google Scholar 

  • Hillocks R.J., Logan J.W.M., Riches C.R., Russellsmith A. (1996a) Soil pests in traditional farming systems in sub-Saharan Africa – A review. 1. Problems, Int. J. Pest Manage. 42, 241–251.

    Google Scholar 

  • Hillocks R.J., Logan J.W.M., Riches C.R., Russellsmith A., Shaxson L.J. (1996b) Soil pests in traditional farming systems in Sub-Saharan Africa – A review. 2. Management strategies, Int. J. Pest Manage. 42, 253–265.

    Google Scholar 

  • Hobbs P.R., Sayre K., Gupta R. (2007) The role of conservation agriculture in sustainable agriculture, Philos. T. Roy. Soc. B, DOI: 10.1098/rstb.2007.2169.

    Google Scholar 

  • Horrocks M., Shane P.A., Barber I.G., D’Costa D.M., Nichol S.L. (2004) Microbotanical remains reveal Polynesian agriculture and mixed cropping in early New Zealand, Res. Paleaobot. Polynol. 131, 147–157.

    Google Scholar 

  • Houghton R.A., Hackler J.L. (2002) Carbon flux to the atmosphere from land use change (http://cdiac.esd.ornl.gov/trends/landuse/Houghton/Houghton.html).

  • Hoyos C., Blas J. (2008) West rethinks strategic threats, Financial Times, 22 June 2008.

    Google Scholar 

  • Hubbard M,, Merlo N., Maxwell S., Caputo E. (1992) Regional food security strategies – the case of Igadd in the Horn of Africa, Food Policy 17, 7–22.

    Google Scholar 

  • Hulse J.H. (2004) Symposium 5: Integrated food systems for food security in a changing world environment – SY 5-1: Integrated food systems and the urbanization of Asian and Africa, J. Food Sci. 69, R130–R132.

    Google Scholar 

  • IFDC (2004) Global and regional data on fertilizer production and consumption 1961/62-2002/03. IFDC, Muscle Shoals, AL, 73 p.

    Google Scholar 

  • IFDC (2006) African soil exhaustion, Science 312, 31.

    Google Scholar 

  • IPCC (2000) Land Use Change and Forestry, A Special Report, Cambridge University Press, Cambridge, UK.

    Google Scholar 

  • IPCC (2007) Climate Change 2007: The Physical Science Basis, Cambridge University Press, Cambridge, UK.

    Google Scholar 

  • Izaurralde R.C., Williams J.R., Post W.M., Thomson A.M., McGill W.B., Owens L.B., Lal R. (2007) Long-term modeling of soil C erosion and sequestration at the small watershed scale, Climatic Change 80, 73–90.

    CAS  Google Scholar 

  • Jagadamma S., Lal R., Hoeft R.G., Nafziger E.D., Adee E.A. (2008) Nitrogen fertilization and cropping systems impacts on soil properties and their relationship with yield in central Corn Belt U.S.A., Soil Till. Res. 98, 120–129.

    Google Scholar 

  • Janzen H.H. (2006) The soil carbon dilemma: shall we hoard it or use it, Soil Biol. Biochem. 38, 419–424.

    CAS  Google Scholar 

  • Jaycinthe P.A., Lal R., Kimble J.M. (2002) effects of wheat residue fertilization on accumulation and biochemical attributes of organic carbon in central Ohio, Soil Sci. 167, 750–758.

    Google Scholar 

  • Jenny H. (1980) Alcohol or humus? Science 1, 444.

    Google Scholar 

  • Johnson J.M.F., Allmaras R.R., Reicosky D.C. (2006) Estimating source carbon from crop residues, roots and rhizodeposits using the national grain-yield database, Agron. J. 98, 622–636.

    CAS  Google Scholar 

  • Johnson J.M.F., Barbour N.W., Weyers S.L. (2007) Chemical composition of crop biomass impacts its decomposition, Soil Sci. Soc. Am. J. 71, 155–162.

    CAS  Google Scholar 

  • Jones P.G., Thornton P.K. (2003) The potential impacts of climate change on maize production in Africa and Latin America in 2055, Global Environ. Chang. 13, 51–59.

    Google Scholar 

  • Kennedy D. (2007) The biofuel conundrum, Science 316, 315.

    Google Scholar 

  • Khan S.A., Mulvaney R.L., Ellsworth T.R., Boast C.W. (2007) The myth of nitrogen fertilization for soil carbon sequestration, J. Environ. Qual. 36, 1821–1832.

    PubMed  CAS  Google Scholar 

  • Kiers E.T., Leakey R.R.B., Izec A.M., Heinemann J.A., Rosenthal E., Nathan D., Jiggins J. (2008) Agriculture at a crossroads, Science 320, 320–321.

    PubMed  CAS  Google Scholar 

  • Kihanda F.M., Warren G.P., Micheni A.N. (2006) Effect of manure application on crop yield and soil chemical properties in a long-term field trial of semi-arid Kenya, Nutr. Cycl. Agroecosys. 76, 341–354.

    Google Scholar 

  • King J.A., Bradley R.I., Harrison R., Carter A.D. (2004) Carbon sequestration and saving potential associated with changes to the management of agricultural soils in England, Soil Use Manage. 20, 394–402.

    Google Scholar 

  • Kitzes J., Wackernagel M., Loh J., Peller A., Goldfinger S., Cheng D., Tea K. (2007) Shrink and share: humanity’s present and future ecological footprint, Philos. T. Roy. Soc. B, DOI: 10.1098/rstb.2007.2164.

    Google Scholar 

  • Knauss J. (2000) The prehistoric water management and land reclamation system in the Kopais-Basin, Boiotia, middle Greece, IDIC J. 49, 39–48.

    Google Scholar 

  • Knorzer K.N. (2000) 3000 years of agriculture in a valley of the high Himalayas, Veg. Hist. Archaeobot. 9, 219–222.

    Google Scholar 

  • Kravchenko A.G., Thelen K.D. (2007) Effect of winter wheat crop residue on no-till corn growth and development, Agron. J. 99, 549–555.

    Google Scholar 

  • Kurukulasuriya P., Mendelsohn R., Hassna R., Benhin J., Deressa T., Diop M., Eid H.M., Fosu K.Y., Gbetibouo G., Jain S., Mahamadou A., Mano R., Kabubo-Mariara J., El-Marsafawy S., Molua E., Ouda S., Ouedraogo M., Sene I., Maddison D., Seo S.N., Dinar A. (2006) Will African agriculture survive climate change? World Bank Econom. Rev. 20, 367–388.

    Google Scholar 

  • Laird D.A. (2008) The charcoal vision: a win-win-win scenario for simultaneously producing bioenergy, permanently sequestering carbon while improving soil and water quality, Agron. J. 178–181.

    Google Scholar 

  • Lal R. (1976) No-tillage effects on soil properties and different crops in Western Nigeria, Soil Sci. Soc. Am. Proc. 40, 762–768.

    CAS  Google Scholar 

  • Lal R. (1987) Effects of soil erosion on crop productivity, Crit. Res. Plant Sci. 5, 303–368.

    Google Scholar 

  • Lal R. (1989) Conservation tillage for sustainable agriculture, Adv. Agron. 42, 85–197.

    Google Scholar 

  • Lal R. (1998) Soil erosion impact on agronomic productivity and environment quality, Crit. Res. Plant Sci. 17, 319–464.

    Google Scholar 

  • Lal R. (1999) Soil management and restoration for C sequestration to mitigate the accelerated greenhouse effect, Prog. Environ. Sci. 1, 307–326.

    CAS  Google Scholar 

  • Lal R. (2003) Soil erosion and the carbon budget, Environ. Int. 13, 437–450.

    Google Scholar 

  • Lal R. (2004) Soil carbon sequestration impacts on global climate change and food security, Science 304, 1623–1627.

    PubMed  CAS  Google Scholar 

  • Lal R. (2006a) Enhancing crop yield in the developing countries through restoration of soil organic carbon pool in agricultural lands, Land Degrad. Dev. 17, 187–209.

    Google Scholar 

  • Lal R. (2006b) Managing soils for feeding a global population of 10 billion, J. Sci. Food Agr. 86, 2273–2284.

    Google Scholar 

  • Lal R. (2007) Soil science and the carbon civilization, Soil Sci. Soc. Am. J. 71, 1095–1108.

    Google Scholar 

  • Lal R., Reicosky D.C., Hanson J. (2007) History of plowing over 10,000 years, Soil Till. Res. 93, 1–12.

    Google Scholar 

  • Lange C.H. (1992) Canal irrigation in prehistoric Mexico – the sequence of technological – change – Doolittle, WE, New Mexico Historic. Rev. 67, 194–195.

    Google Scholar 

  • Lehmann J., Gaunt J., Rondon M. (2006) Biochar sequestration in terrestrial ecosystems – a review, Mitigation and Adaptation Strategies for Global Change 11, 395–419.

    Google Scholar 

  • Lepofsky D. (1995) A radio carbon chronology of pre-historic agriculture in the Society Islands, French Polynesia, Radiocarbon 37, 917–930.

    CAS  Google Scholar 

  • Li W.M., Min Q.W. (1999) Integrated farming systems an important approach toward sustainable agriculture in China, Ambio 28, 655–662.

    Google Scholar 

  • Li H., Parent L.E., Karam A., Tremblay C. (2004) Potential of Sphagum peat for improving soil organic matter, water holding capacity, bulk density and potato yield in a sandy soil, Plant Soil 265, 355–365.

    CAS  Google Scholar 

  • Liang B.C., Campbell C.A., McConkey B.G., Padbury G., Collas P. (2005) An empirical model for-estimating carbon sequestration on the Canadian prairies, Can. J. Soil Sci. 85, 549–556.

    CAS  Google Scholar 

  • Lima H.N., Schaefer C.E.R., Mello J.W.V., Gilkes R.J., Ker J.C. (2002) Pedogenesis and pre-Columbian land use of “Terra Preta Anthrosols” (Indian Black Earth) of western Amazonia, Geoderma 110, 1–17.

    CAS  Google Scholar 

  • Lin J.C.M. (2006) Development of a high yield and low cycle time biomass char production system, Fuel Process. Technol. 87, 487–495.

    CAS  Google Scholar 

  • Lobell D.B., Burke M.B., Tebaldi C., Mastrandea M.D., Falcon W.P., Naylor R.L. (2008) Prioritizing climate change adaptation needs for food security in 2030, Science 319, 607–610.

    PubMed  CAS  Google Scholar 

  • Lugato E., Berti A., Giardini L. (2006) Soil organic carbon (SOC) dynamics with and without residue incorporation in relation to different nitrogen fertilization rates, Geoderma 135, 315–321.

    CAS  Google Scholar 

  • Malhi S.S., Lemke R., Wang Z.H., Chhabra B.S. (2006) Tillage, nitrogen and crop residue effects on crop yield, nutrient uptake, soil quality, and greenhouse gas emissions, Soil Till. Res. 90, 171–183.

    Google Scholar 

  • Mandal B., Majumder B., Bandyopadhyay P.K., Hazra G.C., Gangopadhyay A., Chaudhury J., Saha M.N., Kundu S. (2007) The potential of cropping systems and soil amendments for carbon sequestration in soils under long-term experiments in subtropical India, Global Change Biol. 13, 357–369.

    Google Scholar 

  • Mando A., Ouattara B., Somado A.E., Stroosnijder M.C.S., Breman H. (2005a) Long-term effects of fallow, tillage and manure application on soil organic matter and nitrogen fractions and on sorghum yield under Sudano-Sahelian conditions, Soil Use Manage. 21, 25–31.

    Google Scholar 

  • Mando A., Bonzi M., Wopereis M.C.S., Lompo F., Stroosnijder L. (2005b) Long-term effects of mineral and organic fertilization on soil organic matter fractions and sorghum yield under Sudano-Sahelian conditions, Soil Use Manage. 21, 396–401.

    Google Scholar 

  • Manguiat I.J., Rocamora P.M. (2004) Crop yields and dynamics on soil organic matter, nitrogen, phosphorous, potassium, microbial biomass N and micro organisms as influenced by bio-organics, Philippine Agric. Scientist 87, 383–395.

    Google Scholar 

  • Mann C.C. (2002) The real dirt on rainforest fertility, Science 297, 920–923.

    PubMed  CAS  Google Scholar 

  • Marris E. (2006) Putting the carbon back: black is the new green, Nature 442, 624–626.

    PubMed  CAS  Google Scholar 

  • Martin-Rueda I., Munoz-Guerra L.M., Yunta F., Esteban E., Tenorio J.L., Lucena J.J. (2007) Tillage and crop rotation effects on barley yield and soil nutrients on a Calciortidic Haploxeralf, Soil Till. Res. 92, 1–9.

    Google Scholar 

  • Masri Z., Ryan J. (2006) Soil organic matter and related physical properties in a Mediterranean wheat-based rotation trial, Soil Till. Res. 87, 146–154.

    Google Scholar 

  • Masse W.B. (1981) Prehistoric irrigation systems in the Salt River Valley, Arizona, Science USA 214, 408–415.

    CAS  Google Scholar 

  • McCalla A.F. (1999) Prospects for food security in the 21st Century: with special emphasis on Africa, Agr. Econ. 20, 95–103.

    Google Scholar 

  • McCoy M.D., Hartshorn A.S. (2007) Wind erosion and intensive pre-historic agriculture: a case study from the Kalaupapa field systems, Molokai Island, Hawaii, Geoarchaeology 22, 511–532.

    Google Scholar 

  • Meadows M.E. (2003) Soil erosion in the Swartland, Western Cape Province, South Africa: implications of past and present policy and practice, Environ. Sci. Policy 6, 17–28.

    Google Scholar 

  • Mechado S., Rhinhart K., Petrie S. (2006) Long-term cropping system effects on carbon sequestration in eastern Oregon, J. Environ. Qual. 35, 1548–1553.

    Google Scholar 

  • Michels K., Bielders C.L. (2006) Pearl millet growth on an erosion-affected soil in the Sahel, Exp. Agr. 42, 1–17.

    Google Scholar 

  • Miller F.P., Wali M.K. (1995) Soil, land use and sustainable agriculture: a review, Can. J. Soil Sci. 75, 413–422.

    Google Scholar 

  • Moccia S., Chlesa A., Oberti A., Tittonell P.A. (2006) Yield and quality of sequentially grown cherry tomato and lettuce under long-term conventional, low-input and organic soil management systems, Eur. J. Hort. Sci. 71, 183–191.

    Google Scholar 

  • Morari F., Logato E., Berti A., Giardini L. (2006) Long-term effects of recommended management practices on soil carbon changes and sequestration in north-eastern Italy, Soil Use Manage. 22, 71–81.

    Google Scholar 

  • Morris E. (2006) Black is the new green, Nature 442, 624–626.

    Google Scholar 

  • Nieuwoudt W.L., Vink N. (1989) The effects of increased earnings from traditional agriculture in southern-Africa, South African J. Econ. 57, 257–269.

    Google Scholar 

  • Nordt L.F. Hayashida, Hallmark T., Crawford C. (2004) Late prehistoric soil fertility, irrigation management, and agricultural production in northwest coastal Peru, Geoarchaeology 19, 21–46.

    Google Scholar 

  • Normile D. (2008) As food prices rise, U.S. support for agricultural centers wilts, Science 320, 303.

    Google Scholar 

  • Nye P., Greenland D.G. (1958) Soils Under Shifting Cultivation, Commonwealth Agric. Bureau, Harpenden, England.

    Google Scholar 

  • Nyssen J., Poesen J., Gebremichael D., Vancamenhout K., D’Aes M., Yihdego G., Govers G., Leirs H., Moeyersons J., Naudts J., Haregeweyn N., Haile M., Deckers J. (2007) Interdisciplinary on-site evaluation of stone bunds to control soil erosion on cropland in Northern Ethiopia, Soil Till. Res. 94, 151–163.

    Google Scholar 

  • Oniang’o R., Allotey J., Malaba S.J. (2004) Contribution of indigenous knowledge and practices in food technology to the attainment of food security in Africa, J. Food Sci. 69, R87–R91.

    Google Scholar 

  • Ortega R.A., Westfall D.G., Peterson G.A. (2005) Climatic gradient, cropping system, and crop residue impacts on carbon and nitrogen mineralization in no-till soils, Commun. Soil Sci. Plant 36, 2875–2887.

    CAS  Google Scholar 

  • Otsuka K. (2006) Why can’t we transform traditional agriculture in Sub-Saharan Africa? Rev. Agr. Econ. 28, 332–337.

    Google Scholar 

  • Ouedraogo E., Mando A., Brussaard L., Stroosnijder L. (2007) Tillage and fertility management effects on soil organic matter and sorghum yield in semi-arid West Africa, Soil Till. Res. 94, 64–74.

    Google Scholar 

  • Oyedele D.J., Aina P.O. (2006) Response of soil properties and maize yield to simulated erosion by artificial top soil removal, Plant Soil 284, 375–384.

    CAS  Google Scholar 

  • Pacala S., Socolow R. (2004) Stabilization wedges: solving the climate problem for the next 50 years with current technologies, Science 305, 968–972.

    PubMed  CAS  Google Scholar 

  • Palacios-Fest M.R., Mabry J.B., Nialis J.F., Holmlund J.P., Miksa E., Davis O.K. (2001) Early irrigation systems in southeaster Arizona: the ostracode perspective, J. South Am. Earth Sci. 14, 541–555.

    Google Scholar 

  • Papiernik S.K., Lindstrom M.J., Schumacher J.A., Farenhorst A., Stephens K.D., Schumacher T.E., Lobb D.A. (2005) Variation in soil properties and crop yield across an eroded prairie landscape, J. Soil Water Conserv. 60, 388–395.

    Google Scholar 

  • Park C.C. (1983) Paleohydrologic reconstruction from stratigraphic evidence – a case study from prehistoric irrigation canals in Peru, J. Geol. Soc. 140, 321.

    Google Scholar 

  • Parry M., Rosenzweig C., Livermore M. (2005) Climate change, and risk global food supply of hunger, Philos. T. R. Soc. B Biol. Sci. 360, 2125–2138.

    Google Scholar 

  • Paudel K.P., Lohr L., Cabrera M. (2006) Residue management systems and their implications for production efficiency, Renew. Agr. Food Syst. 21, 124–133.

    Google Scholar 

  • Pieri C. (1991) Fertility of Soils: A Future for Farming in the West African Savanna, Springer, Berlin.

    Google Scholar 

  • Pollock C., Pretty J., Crute I., Leaver C., Dalton H. (2007) Introduction. Sustainable agriculture, Philos. T. R. Soc. B, DOI: 10.1098/rstb.2007.2193.

    Google Scholar 

  • Premathilake R. (2006) Relationship of environmental changes in central Sri Lanka to possible pre-historic land-use and climate changes, Palaeogeogr. Paleaocl. 240, 468–496.

    Google Scholar 

  • Pretty J. (2007) Agricultural sustainability: concepts, principles and evidence, Philos. T. R. Soc. B, DOI: 10.1098/rstb. 2007.2163.

    Google Scholar 

  • Prudencio Y.C., Alhassan R. (1994) The food security stabilization roles of Cassava in Africa, Food Policy 19, 57–64.

    Google Scholar 

  • Puget P., Lal R. (2005) Soil organic carbon and nitrogen in a mollisol in central Ohio as affected by tillage and land uses, Soil Till. Res. 80, 201–213.

    Google Scholar 

  • Pupiro L.A., Vilches E., Nunez E., Gomez J., Baez M., Leon P. (2004) Effect of soil worm humus on yield and the main insect pests in bean crop, Cultivos Tropicales 25, 89–95.

    Google Scholar 

  • Quiroga A., Funaro D., Noellemeyer E., Peinemann N. (2006) Barley yield response to soil organic matter and texture in the Pampas of Agrentina, Soil Till. Res. 90, 63–68.

    Google Scholar 

  • Razafimbelo T., Barthes B., Larre-Larrouy M.C., De Luca E.F., Laurent J.Y., Cerri C.C., Feller C. (2006) Effect of sugarcane residue management (mulching versus burning) on organic matter in a clayey Oxisol from southern Brazil, Agr. Ecosyst. Environ. 115, 285–289.

    Google Scholar 

  • Robertson F.A., Thorbun P.J. (2007) Management of sugarcane harvest residues: consequences for soil carbon and nitrogen, Aust. J. Soil Res. 45, 13–23.

    CAS  Google Scholar 

  • Rukuni M. (2002) Africa: Addressing growing threats to food security, J. Nutr. 132, 3443S–3448S.

    CAS  Google Scholar 

  • Rumpel C., Alexis M., Chabbi A., Chaplet V., Rasse D.P., Valentin C., Mariotti A. (2006) Black carbon contribution to soil organic matter composition in tropical sloping land under slash and burn agriculture, Geoderma 130, 35–46.

    CAS  Google Scholar 

  • Sa J.C.M., Cerri C.C., Lal R., Dick W.A., Fidho S.P.V., Piccolo M.C., et al. (2001) Organic matter dynamics and carbon sequestration rates in a no-tillage chronosphere in a Brazilian Oxisol, Soil Sci. Soc. Am. J. 65, 1486–1499.

    CAS  Google Scholar 

  • Sainju U.M., Lenssen A., Caesar-Tonthat T., Waddell J. (2006a) Tillage and crop rotation effects on dryland soil and residue carbon and nitrogen, Soil Sci. Soc. Am. J. 70, 668–678.

    CAS  Google Scholar 

  • Sainju U.M., Lenssen A., Caesar-Thonthat T., Waddell J. (2006b) Carbon sequestration in dryland soils and plant residue as influenced by tillage and crop rotation, J. Environ. Qual. 35, 1341–1347.

    PubMed  CAS  Google Scholar 

  • Sainju U.M., Singh B.P., Whitehead W.F., Wang S. (2006c) Carbon supply and storage in tilled and nontilled soils as influenced by cover crops and nitrogen fertilization, J. Environ. Qual. 35, 1507–1517.

    PubMed  CAS  Google Scholar 

  • Salako F.K., Dada P.O., Adejuyigbe C.O., Adedire M.O., Martins O., Akwuebu C.A., Williams O.E. (2007) Soil strength and maize yield after top soil removal and application of nutrient amendments on a gravelly Alfisol toposequence, Soil Till. Res. 94, 21–35.

    Google Scholar 

  • Sanchez P.A. (2002) Soil fertility and hunger in Africa, Science 295, 2019–2020.

    PubMed  CAS  Google Scholar 

  • Sanchez P.A., Leakey R.R.B. (1997) Land use transformation in Africa: three determinants for balancing food security with natural resource utilization, Eur. J. Agron. 7, 15–23.

    Google Scholar 

  • Sanchez P.A., Swaminathan M.S. (2005) Cutting world hunger in half, Science 307, 357–359.

    PubMed  CAS  Google Scholar 

  • Schlesinger W.J. (2006) Carbon Trading, Science 315, 1217.

    Google Scholar 

  • Schmidt M.W.I. (2004) Carbon budget in the black, Nature 427, 305–308.

    PubMed  CAS  Google Scholar 

  • Scholes R.J. (1990) The influence of soil fertility on the ecology of souther African dry savannas, J. Biogeogr. 17, 415–419.

    Google Scholar 

  • Scopel E., Findeling A., Guerra E.C., Corbeels M. (2005) Impact of direct sowing mulch-based cropping systems on soil carbon, soil erosion and maize yield, Agron. Sustain. Dev. 25, 425–432.

    CAS  Google Scholar 

  • Seifritz W. (1993) Should we store carbon in charcoal? Int. J. Hydrogen Energ. 18, 405–407.

    CAS  Google Scholar 

  • Shi T. (2002) Ecological agriculture in China: bridging the gap between rhetoric and practice of sustainability, Ecol. Econ. 42, 359–368.

    Google Scholar 

  • Shibu M.E., Leffelaar P.A., Van Keulen H., Affarwal P.K. (2006) Quantitative description of soil organic matter dynamics – a review of approaches with reference to rice-based cropping systems, Geoderma 137, 1–18.

    CAS  Google Scholar 

  • Shittu O.S., Fasina A.S. (2006) Comparative effect of different residue management on maize yield at Ado-Ekiti, Nigeria, J. Sustain. Agr. 28, 41–54.

    Google Scholar 

  • Shneour E.A. (1966) Oxidation of graphite carbon in certain soils, Science 151, 991–992.

    PubMed  CAS  Google Scholar 

  • Short D. (1997) Traditional-style farming and values for sustainable development in Malta, Tijdschrift voor Economische en Sociale Geografie 88, 41–52.

    Google Scholar 

  • Shriar A.J. (2007) In search of sustainable land use and food security in the arid hillside regions of Central America: putting the horse before the cart, Hum. Ecol. 35, 275–287.

    Google Scholar 

  • Silva C.J., Costa C.C., Duda C., Timossi P.C., Leite I.C. (2006) Growth and yield of radish supplemented with different doses of earthworm humus and cattle manure, Revista Ceres 53, 23–28.

    Google Scholar 

  • Singh B., Malhi S.S. (2006) Responses of soil physical properties to tillage and residue management on two soils in a cool temperate environment, Soil Till. Res. 85, 143–153.

    Google Scholar 

  • Smaling E.M.A., Dixon J. (2006) Adding a soil fertility dimension to the global farming systems approach, with cases from Africa, Agr. Ecosyst. Environ. 116, 15–26.

    Google Scholar 

  • Smaling E.M.A., Stoonvogel J.J., Windmeijer N.P. (1993) Calculating soil nutrient balances in Africa at different scales. II. District Scale, Fert. Rec. 35, 237–250.

    CAS  Google Scholar 

  • Smil V. (1994) Energy in world history, West View, Boulder, CO.

    Google Scholar 

  • Smil V. (2008) Energy in nature and society, MIT, Cambridge, MA, 480 p.

    Google Scholar 

  • Soleri D., Cleveland D.A., Aragón C.F., Fuentes L.M.R., Ríos L.H., Sweeney S.H. (2005) Understanding the potential impact of transgenic crops in traditional agriculture: maize farmers’ perspectives in Cuba, Guatemala Mexico Environ. Biosafety Res. 4, 141–166.

    Google Scholar 

  • Sombroek W., de Lourdes Ruivo M., Fearenside P.M., Glaser B., Lehmann J. (2003) Amazon dark earths as carbon stores and sinks, in: Lehmann J., Kern D.C., Glaser B., Woods W.I. (Eds.), Amazon Dark Earths: Origin, Properties and Management, Kluwer, Dordrecht.

    Google Scholar 

  • Somerville C. (2006) The billion ton biofuel vision, Science 312, 277.

    Google Scholar 

  • Sparrow S.D., Lewis C.E., Knight C.W. (2006) Soil quality response to tillage and crop residue removal under subarctic conditions, Soil Till. Res. 91, 15–21.

    Google Scholar 

  • Steiner C., Teixeira W.G., Lehmann J., Nehls T., de Macedo J.L.V., Blum W.E.H., Zech W. (2007) Long-term effects of manure, charcoal and mineral fertilization on crop production and fertility on a highly weathered central Amazonian upland soil, Plant Soil 291, 275–290.

    CAS  Google Scholar 

  • Stevenson C.M., Jackson T.L., Meith A., Bork H.R., Ladeffaged T.N. (2006) Pre-historic and early historic agriculture at Maunga Orito, Easter Island (Rapa Nui), Chile, Antiquity 80, 919–936.

    Google Scholar 

  • Stromgaard P. (1991) Soil nutrient accumulation under traditional African agriculture in the Miombo Woodland of Zambia, Trop. Agr. 68, 74–80.

    CAS  Google Scholar 

  • Sutherland A.J., Irungu J.W., Kang’ara J., Muthamia J., Ouma J. (1999) Household food security in semi-arid Africa – the contribution of participatory adaptive research and development to rural livelihoods in Eastern Kenya, Food Policy 24, 363–390.

    Google Scholar 

  • Swarup A., Manne M.C., Sigh G.B. (2000) Impact of land use and management practices on organic carbon dynamics in soils of India, in: Lal R., Kimble J.M., Stewart B.A. (Eds.), Global Climate Change and Tropical Ecosystems, Lewis, Boca Raton, FL, pp. 261–281.

    Google Scholar 

  • Tan Z.X., Lal R., Wiebe K.D. (2005) Global Soil Nutrient Depletion and Yield Reduction, J. Sustain. Agr. 26, 123.

    Google Scholar 

  • Terra J.A., Reeves D.W., Shaw J.N., Raper R.L. (2005) Impacts of landscape attributes on carbon sequestration during the transition from conventional to conservation management practices on a Coastal Plain field, J. Soil Water Conserv. 60, 438–446.

    Google Scholar 

  • Thomsen I.K., Sorensen P. (2006) Interactions between soil organic matter level and soil tillage in a growing crop: N mineralization and yield response, Soil Use Manage. 22, 221–223.

    Google Scholar 

  • Thrupp L.A. (2000) Linking agricultural biodiversity and food security: the valuable role of agrobiodiversity for sustainable agriculture, Int. Affairs 76, 265.

    CAS  Google Scholar 

  • Tilman D., Hill J., Lehman C. (2006) Carbon-negative biofuels from low-input high-density grassland biomass, Science 314, 1598–1600.

    PubMed  CAS  Google Scholar 

  • Ugwuanyi J.U., Obinne C. (1998) Promoting food security in sub-Saharan Africa, Outlook Agr. 27, 47–52.

    Google Scholar 

  • USDA-FAS (2008) Agricultural Statistics, Foreign Agric. Service, Washington, DC.

    Google Scholar 

  • Vagen T.G., Lal R., Singh B.R. (2005) Soil carbon sequestration in sub-Saharan Africa: a review, Land Degrad. Dev. 16, 53–71.

    Google Scholar 

  • van der Westhuizen A. (2004) Plant defence mechanisms: relevance to agriculture in Africa, South Afr. J. Bot. 70, 124–127.

    Google Scholar 

  • Van Oost K., Govers G., Quine T.A., Heckrath G. (2004) Comment on managing soil carbon (I), Science 305, 1567.

    PubMed  Google Scholar 

  • Van Oost K., Quine T.A., Govers G. et al. (2007) The impact of agricultural soil erosion on the global carbon cycle. Science 318, 626–629.

    PubMed  Google Scholar 

  • Van Rooyen J., Sigwele H. (1998) Towards regional food security in southern Africa: a (new) policy framework for the agricultural sector, Food Policy 23, 491–504.

    Google Scholar 

  • Veenstra J.J., Horwath W.R., Mitchell J.P. (2007) Tillage and cover cropping effects on aggregate-protected carbon in cotton and tomato, Soil Sci. Soc. Am. J. 71, 362–371.

    CAS  Google Scholar 

  • Venterea R.T., Baker J.M., Dolan M.S., Spokas K.A. (2006) Carbon and nitrogen storage are greater under biennial tillage in a Minnesota corn-soybean rotation, Soil Sci. Soc. Am. J. 70, 1752–1762.

    CAS  Google Scholar 

  • Verdin J., Funk C., Senay G., Choularton R. (2005) Climate science and famine early warning, Philos. T. Roy. Soc. B 360, 2155–2168.

    Google Scholar 

  • Vermeer D.E. (1983) Food sufficiency and farming in the future of west-Africa – Resurgence of traditional agriculture, J. Afr. Studies 10, 74–83.

    Google Scholar 

  • Viil P., Vosa T. (2005) Soil loosening depth influence on soil properties and crop yield, in: 10th International Conference, New technological processes and investigation methods for agricultural engineering, pp. 25–31.

    Google Scholar 

  • Vogel C. (2005) Seven fat years and seven lean years? Climate change and agriculture in Africa, IDS Bulletin-Institute of Development Studies 36, 30.

    Google Scholar 

  • Walker N.J., Schulze R.E. (2006) An assessment of sustainable maize production under different management and climate scenarios for smallholder agro-ecosystems in KwaZulu-Natal, South Afr. Phys. Chem. Earth 31, 995–1002.

    Google Scholar 

  • Wang P., Durkalski J.T., Yu W.T., Hoitink H.A.J., Dick W.A. (2006) Agronomic and soil responses to compost and manure amendments under different tillage systems, Soil Sci. 171, 456–467.

    CAS  Google Scholar 

  • Wardle D.A., Nilsson M.-A., Zackrisson O. (2008) Fire-derived charcoal causes loss of forest humus, Science 320, 629.

    PubMed  CAS  Google Scholar 

  • West T.O., Post W.M. (2002) Soil organic carbon sequestration rates by tillage and crop rotation, Soil Sci. Soc. Am. J. 66, 1930–1946.

    CAS  Google Scholar 

  • West T.O., Post W.M. (2006) Soil Organic carbon sequestration rates by tillage and crop rotation, Soil Sci. Soc. Am. J. 66, 1930–1946.

    Google Scholar 

  • Wilhelm W.W., Johnson J.M.F, Hatfield J.L., Woorhees W.B., Linden D.R. (2004) Crop and soil productivity response to corn residue removal: a literature review, Agron. J. 96, 1–17.

    Google Scholar 

  • Wilkins R.J. (2007) Eco-efficient approaches to land management: a case for increased integration of crop and animal production systems, Philos. T. Roy. Soc. B, DOI: 10.1098/ rstb.2007.2167.

    Google Scholar 

  • Xu C. (2004) Comparative study of Chinese ecological agriculture and sustainable agriculture, Int. J. Sustain. Dev. World Ecol. 11, 54–62.

    Google Scholar 

  • Xu X.S., Jeffrey S. (1995) Efficiency and technical progress in traditional and modern agriculture: Evidence from rice production in China, Am. J. Agr. Econ. 77, 1363.

    Google Scholar 

  • Xu Y., Zhang F.R., Wang J.K., Wang R., Kong X.B. (2006) Influence of management practices on soil organic matter changes in the Northern China plain and Northeastern China, Soil Till. Res. 86, 230–236.

    Google Scholar 

  • Zhang X.C. (2005) Spatial downscaling of global climate model output for site-specific assessment of crop production and soil erosion, Agr. Forest Meteorol. 135, 215–229.

    Google Scholar 

  • Zibilske L.M., Bradford J.M. (2007) Oxygen effects on carbon, polyhenols, and nitrogen mineralization potential in soil, Soil Sci. Soc. Am. J. 71, 133–139.

    CAS  Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Rattan Lal .

Editor information

Editors and Affiliations

Rights and permissions

Reprints and permissions

Copyright information

© 2009 Springer Science+Business Media B.V

About this chapter

Cite this chapter

Lal, R. (2009). Soils and Food Sufficiency: A Review. In: Lichtfouse, E., Navarrete, M., Debaeke, P., Véronique, S., Alberola, C. (eds) Sustainable Agriculture. Springer, Dordrecht. https://doi.org/10.1007/978-90-481-2666-8_4

Download citation

Publish with us

Policies and ethics