References
- Ahuja, L.R., Rojas, K.W., Hanson, J.D., Shaffer, M.J., Ma, L. (2000). The Root Zone Water Quality Model. Water Resources Publications, Highlands Ranch, CO.
- Bhattarai R, Kalita P.K., Patel M.K. (2009). Nutrient transport through a Vegetative Filter Strip with subsurface drainage. J Environ Manage. 90(5): 1868-76. https://doi.org/10.1016/j.jenvman.2008.12.010.
- Castellano, M.J., Schmidt, J.P., Kaye, J.P., Walker, C., Graham, C.B., Lin, H., Dell, C.J. (2010). Hydrological and biogeochemical controls on the timing and magnitude of nitrous oxide flux across an agricultural landscape. Global Change Biol. 16: 2711-2720. https://doi.org/10.1111/j.1365-2486.2009.02116.x
- Coyne, M.S. (2008). "Biological denitrification," in Nitrogen in Agricultural Systems, eds J. S. Schepers and W. R. Raun (Madison, WI: ASA, CSSA, SSSA), 201-253.
- Davidson, E.A., Verchot, L.V. (2000). Testing the hole-in-the-pipe model of nitric and nitrous oxide emissions from soils using the tragnet database. Global Biogeochem. Cycles 14, 1035-1043. https://doi.org/10.1029/1999GB001223.
- Fernadez, F. G., Venterea, R. T., & Fabrizzi, K. P. (2016). Corn nitrogen management influences nitrous oxide emissions in drained and undrained soils. Journal of environmental quality, 45(6), 1847-1855. https://doi.org/10.2134/jeq2016.06.0237.
- Gillette, K., Malone, R.W., Kaspar, T.C., Ma, L., Parkin, T.B., Jaynes, D.B., Fang, Q.X., Hatfield, J.L., Feyereisen, G.W., Kersebaum, K.C. (2018). N loss to drain flow and N2O emissions from a corn-soybean rotation with winter rye, Science of The Total Environment, 618: 982-997. https://doi.org/10.1016/j.scitotenv.2017.09.054.
- Harding, D. J., Neugebohren, J., Grutter, M., Schmidt-May, A. F., Auerbach, D. J., Kitsopoulos, T. N., & Wodtke, A. M. (2014). Single-field slice-imaging with a movable repeller: Photodissociation of N2O from a hot nozzle. The Journal of Chemical Physics, 141(5), 054201. https://doi.org/10.1063/1.4891469.
- Hwang, S., Cooke, R., Bhattarai, R. (2023). Assessing Tile Depth and Spacing Impact on Nutrient Losses and Crop Production, ILICA newsletter.
- IPCC (2007) Climate Change 2007: The PhysicalScience Basis. Contribution of Working Group I to the Fourth Assessment Reportof the Intergovernmental Panel on Climate Change, eds Solomon S, et al.(Cambridge Univ Press, Cambridge, UK).
- Kumar, S., Nakajima, T., Kadono, A., Lal, R., & Fausey, N. (2014). Long-term tillage and drainage influences on greenhouse gas fluxes from a poorly drained soil of central Ohio. Journal of Soil and Water Conservation, 69(6), 553-563. https://doi.org/10.2489/jswc.69.6.553.
- Mueller, N., Gerber, J., Johnston, M. et al. Closing yield gaps through nutrient and water management. Nature 490, 254-257 (2012). https://doi.org/10.1038/nature11420.
- Nangia, V., Sunohara, M.D., Topp, E., Gregorich, E.G., Drury, C.F., Gottschall, N., Lapen, D.R., 2013. Measuring and modeling the effects of drainage water management on soil greenhouse gas fluxes from corn and soybean fields. Journal of Environmental Management, 129, 652-664. https://doi.org/10.1016/j.jenvman.2013.05.040.
- Nash, P., Motavalli, P., Nelson, K., & Kremer, R. (2015). Ammonia and nitrous oxide gas loss with subsurface drainage and polymer-coated urea fertilizer in a poorly drained soil. Journal of Soil and Water Conservation, 70(4), 267-275. https://doi.org/10.2489/jswc.70.4.267.
- Negm, L. M., Youssef, M. A., Skaggs, R. W., Chescheir, G. M., Jones, J. (2014). DRAINMOD-DSSAT model for simulating hydrology, soil carbon and nitrogen dynamics, and crop growth for drained crop land. Agricultural water management, 137, 30-45.
- Preza Fontes, G., Bhattarai, R., Christianson, L. E., & Pittelkow, C. M. (2019). Combining environmental monitoring and remote sensing technologies to evaluate cropping system nitrogen dynamics at the field-scale. Frontiers in Sustainable Food Systems, 3, 8.
- Preza-Fontes, G., Pittelkow, C.M., Greer, K.D., Bhattarai, R., Christianson, L.E. (2021). Splitnitrogen application with cover cropping reduces subsurface nitrate losses while maintaining corn yields. J Environ Qual. 50: 1408-1418. https://doi.org/10.1002/jeq2.20283.
- Preza-Fontes, G., Christianson, L.E., Greer, K., Bhattarai, R., Pittelkow, C.M. (2022). Inseason split nitrogen application and cover cropping effects on nitrous oxide emissions in rainfed maize, agriculture, Ecosystems & Environment, 326: 107813. https://doi.org/10.1016/j.agee.2021.107813.
- Prinn, R. G. et al. (2018). History of chemically andradiatively important atmospheric gases from the Advanced Global AtmosphericGases Experiment (AGAGE). Earth Syst. Sci. Data 10, 985-1018.
- Neubauer, S.C., Megonigal, J.P. (2015). Movingbeyond global warming potentials to quantify the climatic role of ecosystems. Ecosystems 18 (6), 1000-1013. https://doi.org/10.1007/s10021-015-9879-4.
- Ravishankara, A. R., Daniel, J. S., Portmann, R. W. (2009). Nitrous oxide (N2O): the dominant ozone-depleting substance emitted in the 21st century. science, 326(5949): 123-125. https://doi.org/10.1126/science.1176985.
- Singh, S., Negm, L., Jeong, H., Cooke, R., Bhattarai, R. (2022). Comparison of simulated nitrogen management strategies using DRAINMOD-DSSAT and RZWQM2. Agricultural Water Management, 266, 107597.
- Tian, H., Xu, R., Canadell, J.G. et al. (2020). A comprehensive quantification of global nitrous oxide sources andsinks. Nature 586, 248-256. https://doi.org/10.1038/s41586-020-2780-0.
- Venterea, R.T., Petersen, S.O., de Klein, C.A.M., Pedersen, A.R., Noble, A.D.L., Rees, R.M., Gamble, J.D., Parkin, T.B. (2020). Global research alliance N2O chamber methodology guidelines: flux calculations. J. Environ. Qual. 49: 1141-1155. https://doi.org/10.1002/jeq2.20118.
- Verhoeven E, Pereira E, Decock C, Garland G, Kennedy T, Suddick E, Horwath W, Six J. (2017). N2O emissions from California farmlands: A review. Calif Agr 71(3):148-159. https://doi.org/10.3733/ca.2017a0026.
- World Meteorological Organization. (2010). WMOGreenhouse gas bulletin: the state of greenhouse gases in the atmosphere basedon observations through 2009. See http://www.wmo.int/gaw/.
- Zhu X, Burger M, Doane TA, Horwath WR. (2013). Ammonia oxidation pathways and nitrifier denitrification are significant sources of N2O and NO under low oxygen availability. P Natl Acad Sci USA 110:6328-33.