Greenhouse gas emissions intensity of global croplands (original) (raw)
References
Foley, J. A. et al. Solutions for a cultivated plane. Nature478, 337–342 (2011). ArticleCAS Google Scholar
Lipper, L. et al. Climate-smart agriculture for food security. Nat. Clim. Change4, 1068–1072 (2014). Article Google Scholar
Tilman, D., Balzer, C., Hill, J. & Befort, B. L. Global food demand and the sustainable intensification of agriculture. Proc. Natl Acad. Sci. USA108, 20260–20264 (2011). ArticleCAS Google Scholar
Grassini, P. & Cassman, K. G. High-yield maize with large net energy yield and small global warming intensity. Proc. Natl Acad. Sci. USA109, 1074–1079 (2012). ArticleCAS Google Scholar
Van Groenigen, J. W., Velthof, G. L., Oenema, O., Van Groenigen, K. J. & Van Kessel, C. Towards an agronomic assessment of N2O emissions: a case study for arable crops. Eur. J. Soil Sci.61, 903–913 (2010). ArticleCAS Google Scholar
Linquist, B, van Groenigen, K. J., Adviento-Borbe, M. A., Pittelkow, C. & van Kessel, C. An agronomic assessment of greenhouse gas emissions from major cereal crops. Glob. Change Biol.18, 194–209 (2012). Article Google Scholar
West, P. C. et al. Trading carbon for food: Global comparison of carbon stocks vs. crop yields on agricultural land. Proc. Natl Acad. Sci. USA107, 19645–19648 (2010). ArticleCAS Google Scholar
Vermeulen, S. J., Campbell, B. M. & Ingram, J. S. I. Climate change and food systems. Ann. Rev. Environ. Resour.37, 195–222 (2012). Article Google Scholar
Houghton, R. A. et al. Carbon emissions from land use and land-cover change. Biogeosciences9, 5125–5142 (2012). ArticleCAS Google Scholar
Godfray, H. C. J., Pretty, J., Thomas, S. M., Warham, E. J. & Beddington, J. R. Linking policy on climate and food. Science331, 1013–1014 (2011). ArticleCAS Google Scholar
FAOSTAT Online Statistical Service (Food and Agriculture Organization (FAO), 2016); http://faostat3.fao.org
Tubiello, F. N. et al. The contribution of agriculture, forestry and other land use activities to global warming, 1990–2012. Glob. Change Biol.21, 2655–2660 (2015). Article Google Scholar
Garnett, T. et al. Sustainable intensification in agriculture: premises and policies. Science341, 33–34 (2013). ArticleCAS Google Scholar
Feng, J. F. et al. Impacts of cropping practices on yield-scaled greenhouse gas emissions from rice fields in China: A meta-analysis. Agr. Ecosyst. Environ.164, 220–228 (2013). Article Google Scholar
Chen, X. et al. Producing more grain with lower environmental costs. Nature514, 486–489 (2014). ArticleCAS Google Scholar
Gerber, J. S. et al. Spatially explicit estimates of N2O emissions from croplands suggest climate mitigation opportunities from improved fertilizer management. Glob. Change Biol.22, 3383–3394 (2016). Article Google Scholar
Yan, X. Y., Akiyama, H., Yagi, K. & Akimoto, H. Global estimations of the inventory and mitigation potential of methane emissions from rice cultivation conducted using the 2006 Intergovernmental Panel on Climate Change Guidelines. Glob. Biogeochem. Cycles23, GB2002 (2009). Article Google Scholar
IPCC: Summary for policymakers. In Climate Change 2007: The Physical Science Basis (eds Solomon, S. et al.) (Cambridge Univ. Press, 2007).
Mohanty, S. Trends in global rice consumption. Rice Today12, 44–45 (2013). Google Scholar
IPCC 2006 IPCC Guidelines for National Greenhouse Gas Inventories. Prepared by the National Greenhouse Gas Inventories Programme (eds Eggleston, H. S., Buendia, L., Miwa, K., Ngara, T. & Tanabe, K.) (Institute for Global Environmental Strategies, 2006).
Frolking, S. et al. Peatlands in the Earth’s 21st century climate system. Environ. Rev.19, 371–396 (2011). ArticleCAS Google Scholar
Davis, S. J., Burney, J. A., Pongratz, J. & Caldeira, K. Methods for attributing land-use emissions to products. Carbon Manage.5, 233–245 (2014). ArticleCAS Google Scholar
DeFries, R. et al. Global nutrition. Metrics for land-scarce agriculture. Science349, 238–240 (2015). ArticleCAS Google Scholar
Cassidy, E. S., West, P. C., Gerber, J. S. & Foley, J. A. Redefining agricultural yields: from tonnes to people nourished per hectare. Environ. Res. Lett.8, 034015 (2013). Article Google Scholar
Khoury, C. K. et al. Increasing homogeneity in global food supplies and the implications for food security. Proc. Natl Acad. Sci. USA111, 4001–4006 (2014). ArticleCAS Google Scholar
West, P. C. et al. Leverage points for improving global food security and the environment. Science345, 325–328 (2014). ArticleCAS Google Scholar
Zhang, X. et al. Managing nitrogen for sustainable development. Nature528, 51–59 (2015). ArticleCAS Google Scholar
Mueller, N. D. et al. Closing yield gaps through nutrient and water management. Nature490, 254–257 (2012). ArticleCAS Google Scholar
Pittelkow, C. M. et al. Yield-scaled global warming potential of annual nitrous oxide and methane emissions from continuously flooded rice in response to nitrogen input. Agr. Ecosyst. Environ.177, 10–20 (2013). ArticleCAS Google Scholar
Merrigan, K. et al. Designing a sustainable diet. Science350, 165–166 (2015). ArticleCAS Google Scholar
Monfreda, C., Ramankutty, N. & Foley, J. A. Farming the planet: 2. Geographic distribution of crop areas, yields, physiological types, and net primary production in the year 2000. Glob. Biogeochem. Cycles22, GB1022 (2008). Article Google Scholar
Ramankutty, N., Evan, A. T., Monfreda, C. & Foley, J. A. Farming the planet: 1. Geographic distribution of global agricultural lands in the year 2000. Glob. Biogeochem. Cycles22, GB1003 (2008). Article Google Scholar
IPCC 2013 Supplement to the 2006 IPCC Guidelines for National Greenhouse Gas Inventories: Wetlands (eds Hiraishi, T. et al.) (IPCC, 2014).
Herrero, M. et al. Biomass use, production, feed efficiencies, and greenhouse gas emissions from global livestock systems. Proc. Natl Acad. Sci. USA110, 20888–20893 (2013). ArticleCAS Google Scholar
Robinson, T. et al. Global Livestock Production Systems (FAO, International Livestock Research Institute (ILRI), 2011). Google Scholar
Xu, S. P., Jaffe, P. R. & Mauzerall, D. L. A process-based model for methane emission from flooded rice paddy systems. Ecol. Model.205, 475–491 (2007). ArticleCAS Google Scholar
Portmann, F. T. Global Estimation of Monthly Irrigated and Rainfed Crop Areas on a 5 Arc-minute Grid PhD thesis, Univ. Frankfurt (2011)
Li, C. S. et al. Reduced methane emissions from large-scale changes in water management of China’s rice paddies during 1980–2000. Geophys. Res. Lett.29, 1972 (2002) Google Scholar
Asia Least-cost Greenhouse Gas Abatement Strategy (ALGAS) (Asian Development Bank, Global Environment Facility and United Nations Development Program, 1998)
Adhya, T. K., Linquist, B., Searchinger, T., Wassmann, R. & Yan, X. Wetting and Drying: Reducing Greenhouse Gas Emissions and Saving Water from Rice Production (World Resources Institute, 2014) Google Scholar
Yan, X. Y., Yagi, K., Akiyama, H. & Akimoto, H. Statistical analysis of the major variables controlling methane emission from rice fields. Glob. Change Biol.11, 1131–1141 (2005) Article Google Scholar
Huke, R. E. & Huke, E. H. Rice Area by Type of Culture: South, Southeast, and East Asia, A Revised and Updated Data Base (International Rice Research Institute, 1997) Google Scholar
Vandergon, H. A. C. D. & Neue, H. U. Influence of organic-matter incorporation on the methane emission from a wetland rice field. Glob. Biogeochem. Cycles9, 11–22 (1995) Article Google Scholar
Bijay-Singh, Shan, Y. H., Johnson-Beebout, S. E., Yadvinder-Singh & Buresh, R. J. Chapter 3 crop residue management for lowland rice-based cropping systems in Asia. Adv. Agron.98, 117–199 (2008) Article Google Scholar
Gupta, P. K. et al. Residue burning in rice-wheat cropping system: causes and implications. Curr. Sci.87, 1713–1717 (2004) CAS Google Scholar
Ahmed, T., Ahmad, B. & Ahmad, W. Why do farmers burn rice residue? Examining farmers’ choices in Punjab, Pakistan. Land Use Policy47, 448–458 (2015) Article Google Scholar
Yevich, R. & Logan, J. A. An assessment of biofuel use and burning of agricultural waste in the developing world. Glob. Biogeochem. Cycles17, 1095 (2003) Article Google Scholar
Yan, X. Y., Ohara, T. & Akimoto, H. Bottom-up estimate of biomass burning in mainland China. Atmos. Environ.40, 5262–5273 (2006) ArticleCAS Google Scholar
Joosten, H. The Global Peatland CO2 Picture: Peatland Status and Drainage Related Emissions in all Countries of the World 35 (Wetlands International, 2009) Google Scholar
Page, S. E., Rieley, J. O. & Banks, C. J. Global and regional importance of the tropical peatland carbon pool. Glob. Change Biol.17, 798–818 (2011) Article Google Scholar
Lappalainen, E. Global Peat Resources 359 (International Peat Society, 1996) Google Scholar
Joosten, H. Wise Use of Mires and Peatlands 304 (International Mire Conservation Group and International Peat Society, 2002) Google Scholar
Jauhiainen, J. & Silvennoinen, H. Diffusion GHG fluxes at tropical peatland drainage canal water surfaces. Suo63, 93–105 (2012) Google Scholar
Butterbach-Bahl, K., Baggs, E. M., Dannenmann, M., Kiese, R. & Zechmeister-Boltenstern, S. Nitrous oxide emissions from soils: how well do we understand the processes and their controls? Phil. Trans. R. Soc.368, 20130122 (2013) Article Google Scholar
Stehfest, E. & Bouwman, L. N2O and NO emission from agricultural fields and soils under natural vegetation: summarizing available measurement data and modeling of global annual emissions. Nutr. Cycl. Agroecosyst.74, 207–228 (2006) ArticleCAS Google Scholar
Mosier, A. et al. Closing the global N2O budget: nitrous oxide emissions through the agricultural nitrogen cycle. Nutr. Cycl. Agroecosyst.52, 225–248 (1998) ArticleCAS Google Scholar
Davidson, E. A. The contribution of manure and fertilizer nitrogen to atmospheric nitrous oxide since 1860. Nat. Geosci.2, 659–662 (2009) ArticleCAS Google Scholar
Philibert, A., Loyce, C. & Makowski, D. Quantifying uncertainties in N2O emission due to N fertilizer application in cultivated areas. PLoS ONE7, e50950 (2012) ArticleCAS Google Scholar
Shcherbak, I., Millar, N. & Robertson, G. P. Global metaanalysis of the nonlinear response of soil nitrous oxide (N2O) emissions to fertilizer nitrogen. Proc. Natl Acad. Sci. USA111, 9199–9204 (2014) ArticleCAS Google Scholar
Sawamoto, T., Nakajima, Y., Kasuya, M., Tsuruta, H. & Yagi, K. Evaluation of emission factors for indirect N2O emission due to nitrogen leaching in agro-ecosystems. Geophys. Res. Lett.32, L03403 (2005) Article Google Scholar
Hijmans, R. J., Cameron, S. E., Parra, J. L., Jones, P. G. & Jarvis, A. Very high resolution interpolated climate surfaces for global land areas. Int J. Climatol.25, 1965–1978 (2005) Article Google Scholar
Zomer, R. J., Trabucco, A., Bossio, D. A. & Verchot, L. V. Climate change mitigation: a spatial analysis of global land suitability for clean development mechanism afforestation and reforestation. Agric. Ecosyst. Environ.126, 67–80 (2008) Article Google Scholar
Zomer, R. et al. Trees and Water: Smallholder Agroforestry on Irrigated Lands in Northern India (International Water Management Institute, 2007) Google Scholar
Batjes, N. H. ISRIC-WISE Derived Soil Properties on a 5 by 5 Arc-minutes Global Grid V 1.2 52 (ISRIC, 2012) Google Scholar
Portmann, F. T., Siebert, S. & Döll, P. MIRCA200 - Global monthly irrigated and rainfed crop areas around the year 2000: A new high-resolution data set for agricultural and hydrological modeling. Glob. Biogeochem. Cycles24, GB1011 (2010) Article Google Scholar
MacDonald, G. K. et al. Rethinking agricultural trade relationships in an era of globalization. BioScience65, 275–289 (2015) Article Google Scholar
Licker, R. et al. Mind the gap: how do climate and agricultural management explain the ‘yield gap’ of croplands around the world? Glob. Ecol. Biogeogr.19, 769–782 (2010) Article Google Scholar
Jägermeyr, J. et al. Integrated crop water management might sustainably halve the global food gap. Environ. Res. Lett.11, 025002 (2016) Article Google Scholar