Suppression of NH3 and N2O emissions by massive urea intercalation in montmorillonite
暂无分享,去创建一个
S. Komarneni | Dong-Hoon Lee | S. Yun | H. Ro | Y. Seo | Man Park | C. Choi | D. H. Lee | K. Kim | Chan Yong Kim | Jong Su Kim | C. Kim
[1] Zhihong Xu,et al. In situ mineral 15N dynamics and fate of added 15NH4+ in hoop pine plantation and adjacent native forest in subtropical Australia , 2008 .
[2] Lai-Hua Liu,et al. Molecular and physiological aspects of urea transport in higher plants , 2008 .
[3] Seungdo Kim,et al. Effects of nitrogen fertilizer application on greenhouse gas emissions and economics of corn production. , 2008, Environmental science & technology.
[4] Yuncong C. Li,et al. The Role of Nutrient Efficient Plants in Improving Crop Yields in the Twenty First Century , 2008 .
[5] M. Nguyen,et al. Reducing NH3, N2O and $${\text{NO}}_3^ - $$ –N losses from a pasture soil with urease or nitrification inhibitors and elemental S-amended nitrogenous fertilizers , 2008, Biology and Fertility of Soils.
[6] Yuping Yan,et al. Fluxes of CH4 and N2O from soil under a tropical seasonal rain forest in Xishuangbanna, Southwest China. , 2008, Journal of environmental sciences.
[7] J. Galloway,et al. An Earth-system perspective of the global nitrogen cycle , 2008, Nature.
[8] A. G. Allen,et al. Atmospheric emission of reactive nitrogen during biofuel ethanol production. , 2008, Environmental science & technology.
[9] A. Corniello,et al. Areal identification of groundwater nitrate contamination sources in periurban areas , 2007 .
[10] U. Schmidhalter,et al. N2O, NH3 and NOx Emissions as a Function of Urea Granule Size and Soil Type Under Aerobic Conditions , 2006 .
[11] M. Lefsrud,et al. Kale carotenoids are unaffected by, whereas biomass production, elemental concentrations, and selenium accumulation respond to, changes in selenium fertility. , 2006, Journal of agricultural and food chemistry.
[12] J. Gaunt,et al. The efficiency of nitrogen fertiliser for rice in Bangladeshi farmers’ fields , 2005 .
[13] L. Norton,et al. Calcium and magnesium effects on ammonia adsorption by soil clays , 2005 .
[14] J. Borggaard,et al. Simulating the fate of subsurface-banded urea , 2004, Nutrient Cycling in Agroecosystems.
[15] Dong-Hoon Lee,et al. Intercalation of magnesium–urea complex into swelling clay , 2004 .
[16] K. Harmsen,et al. A comparison of the isotope-dilution and the difference method for estimating fertilizer nitrogen recovery fractions in crops. III. Experimental , 2003 .
[17] Yuncong C. Li,et al. Clinoptilolite zeolite and cellulose amendments to reduce ammonia volatilization in a calcareous sandy soil , 2002, Plant and Soil.
[18] P. Boeckx,et al. Nitrous oxide production from an ultisol of the humid tropics treated with different nitrogen sources and moisture regimes , 2002, Biology and Fertility of Soils.
[19] L. Wassenaar,et al. Stable nitrogen isotopes in waterfowl feathers reflect agricultural land use in western Canada. , 2001, Environmental science & technology.
[20] M. Husni,et al. Ammonia volatilization from urea as affected by tropical‐based palm oil mill effluent (Pome) and peat , 1999 .
[21] N. Crawford,et al. Molecular and physiological aspects of nitrate uptake in plants , 1998 .
[22] D. W. Nelson,et al. Direct Colorimetric Measurement of Ammonium in Potassium Chloride Extracts of Soils , 1983 .
[23] L. L. Medsker,et al. Brucine Method for the Determination of Nitrate in Ocean, Estuarine, and Fresh Waters. , 1964 .
[24] J. Schjoerring,et al. Ammonia Emission from Mineral Fertilizers and Fertilized Crops , 2004 .
[25] J. M. Bremner,et al. A modified diacetyl monoxime method for colorimetric determination of urea in soil extracts1 , 1979 .