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and investors can cultivate sustainability (p. 71pp). Austin, TX: CERES.
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Sustainable bioenergy production from marginal lands in the U.S. Midwest. Nature, 493(7433),
514–517.
Hamilton, S. K., Hussain, M. Z., Bhardwaj, A. K., Basso, B., & Robertson, G. P. (2015a).
Comparative water use by maize, perennial crops, restored prairie, and poplar trees in the
U.S. Midwest. Environmental Research Letters, 10(6), 064015.
Johnston, C. A. (2014). Agricultural expansion: Land use shell game in the U.S. Northern Plains.
Landscape Ecology, 29(1), 81–95.
Lark, T. J., Salmon, J. M., & Gibbs, H. K. (2015). Cropland expansion outpaces agricultural and
biofuel policies in the United States. Environmental Research Letters, 10(4), 044003.
Le, P. V., Kumar, P., & Drewry, D. T. (2011). Implications for the hydrologic cycle under
climate change due to the expansion of bioenergy crops in the Midwestern United States.
Proceedings of the National Academy of Sciences of the United States of America, 108(37),
15085–15090.
Mladenoff, D. J., Sahajpal, R., Johnson, C. P., & Rothstein, D. E. (2016). Recent land use change
to agriculture in the U.S. lake states: Impacts on cellulosic biomass potential and natural lands.
PLoS One, 11(2), e0148566. https://doi.org/10.1371/journal.pone.0148566.
Nonhebel, S. (2005). Renewable energy and food supply: Will there be enough land? Renewable
and Sustainable Energy Reviews, 9, 191–201.
Plourde, J. D., Pijanowski, B. C., & Pekin, B. K. (2013). Evidence for increased monoculture cropping in the Central United States. Agriculture, Ecosystems & Environment, 165(2013), 50–59.
Qin, Z., Zhuang, Q., & Cai, X. (2015). Bioenergy crop productivity and potential climate change
mitigation from marginal lands in the United States: An ecosystem modeling perspective. GCB
Bioenergy, 7, 1211–1221.
Robertson, G. P., Hamilton, S. K., Del Grosso, S. J., & Parton, W. J. (2011). The biogeochemistry
of bioenergy landscapes: Carbon, nitrogen, and water considerations. Ecological Applications,
21, 1055–1067.
Tilman, D., Hill, J., & Lehman, C. (2006). Carbon-negative biofuels from low-input high-diversity
grassland biomass. Science, 314, 1598–1600.
Werling, B. P., Dickson, T. L., Isaacs, R., Gaines, H., Gratton, C., Gross, K. L., Liere, H.,
Malmstrom, C. M., Meehan, T. D., Ruan, L., & Robertson, B. A. (2014). Perennial grasslands
enhance biodiversity and multiple ecosystem services in bioenergy landscapes. Proceedings
of the National Academy of Sciences of the United States of America, 111, 1652–1657.
Energy-Water
Environmental Protection Agency. (2013). National rivers and streams assessment, 2008–2009
results. Retrieved from http://www.epa.gov/national-aquatic-resource-surveys/nrsa.
Hamilton, S. H., ElSawah, S., Guillaume, J. H., Jakeman, A. J., & Pierce, S. A. (2015b). Integrated
assessment and modelling: Overview and synthesis of salient dimensions. Environmental
Modelling & Software, 64, 215–229.
Schornagel, J., Niele, F., Worrell, E., & Boggermann, M. (2012). Water accounting for (agro)
industrial operations and its application to energy pathways. Resources, Conservation and
Recycling., 61(2012), 1–15.
World Bank. (2013). Thirsty energy, water papers. Water Partnership Program.
World Energy Council. (2010). Water for energy. London, UK: World Energy Council.
World Water Assessment Program (WWAP). (2012). The United Nations World Water Development
Report 4. Paris: UNESCO.
F. R. Miralles-Wilhelm
Barton, B., & Clark, S. E. (2014). Water & climate risks facing U.S. corn production: How companies
and investors can cultivate sustainability (p. 71pp). Austin, TX: CERES.
Gelfand, I., Sahajpal, R., Zhang, X., Izaurralde, R. C., Gross, K. L., & Robertson, G. P. (2013).
Sustainable bioenergy production from marginal lands in the U.S. Midwest. Nature, 493(7433),
514–517.
Hamilton, S. K., Hussain, M. Z., Bhardwaj, A. K., Basso, B., & Robertson, G. P. (2015a).
Comparative water use by maize, perennial crops, restored prairie, and poplar trees in the
U.S. Midwest. Environmental Research Letters, 10(6), 064015.
Johnston, C. A. (2014). Agricultural expansion: Land use shell game in the U.S. Northern Plains.
Landscape Ecology, 29(1), 81–95.
Lark, T. J., Salmon, J. M., & Gibbs, H. K. (2015). Cropland expansion outpaces agricultural and
biofuel policies in the United States. Environmental Research Letters, 10(4), 044003.
Le, P. V., Kumar, P., & Drewry, D. T. (2011). Implications for the hydrologic cycle under
climate change due to the expansion of bioenergy crops in the Midwestern United States.
Proceedings of the National Academy of Sciences of the United States of America, 108(37),
15085–15090.
Mladenoff, D. J., Sahajpal, R., Johnson, C. P., & Rothstein, D. E. (2016). Recent land use change
to agriculture in the U.S. lake states: Impacts on cellulosic biomass potential and natural lands.
PLoS One, 11(2), e0148566. https://doi.org/10.1371/journal.pone.0148566.
Nonhebel, S. (2005). Renewable energy and food supply: Will there be enough land? Renewable
and Sustainable Energy Reviews, 9, 191–201.
Plourde, J. D., Pijanowski, B. C., & Pekin, B. K. (2013). Evidence for increased monoculture cropping in the Central United States. Agriculture, Ecosystems & Environment, 165(2013), 50–59.
Qin, Z., Zhuang, Q., & Cai, X. (2015). Bioenergy crop productivity and potential climate change
mitigation from marginal lands in the United States: An ecosystem modeling perspective. GCB
Bioenergy, 7, 1211–1221.
Robertson, G. P., Hamilton, S. K., Del Grosso, S. J., & Parton, W. J. (2011). The biogeochemistry
of bioenergy landscapes: Carbon, nitrogen, and water considerations. Ecological Applications,
21, 1055–1067.
Tilman, D., Hill, J., & Lehman, C. (2006). Carbon-negative biofuels from low-input high-diversity
grassland biomass. Science, 314, 1598–1600.
Werling, B. P., Dickson, T. L., Isaacs, R., Gaines, H., Gratton, C., Gross, K. L., Liere, H.,
Malmstrom, C. M., Meehan, T. D., Ruan, L., & Robertson, B. A. (2014). Perennial grasslands
enhance biodiversity and multiple ecosystem services in bioenergy landscapes. Proceedings
of the National Academy of Sciences of the United States of America, 111, 1652–1657.
Energy-Water
Environmental Protection Agency. (2013). National rivers and streams assessment, 2008–2009
results. Retrieved from http://www.epa.gov/national-aquatic-resource-surveys/nrsa.
Hamilton, S. H., ElSawah, S., Guillaume, J. H., Jakeman, A. J., & Pierce, S. A. (2015b). Integrated
assessment and modelling: Overview and synthesis of salient dimensions. Environmental
Modelling & Software, 64, 215–229.
Schornagel, J., Niele, F., Worrell, E., & Boggermann, M. (2012). Water accounting for (agro)
industrial operations and its application to energy pathways. Resources, Conservation and
Recycling., 61(2012), 1–15.
World Bank. (2013). Thirsty energy, water papers. Water Partnership Program.
World Energy Council. (2010). Water for energy. London, UK: World Energy Council.
World Water Assessment Program (WWAP). (2012). The United Nations World Water Development
Report 4. Paris: UNESCO.
F. R. Miralles-Wilhelm
