Comparison of soil analytical methods for estimating wheat potassium fertilizer requirements in response to contrasting plant K demand in the glasshouse
暂无分享,去创建一个
[1] P. Teasdale,et al. Development and evaluation of the diffusive gradients in thin films technique for measuring nitrate in freshwaters. , 2016, Analytica chimica acta.
[2] A. McNeill,et al. Application of the diffusive gradients in thin films technique for available potassium measurement in agricultural soils: effects of competing cations on potassium uptake by the resin gel. , 2014, Analytica chimica acta.
[3] K. Greer,et al. Canada West: Use of ion-exchange resin membranes for nutrient management in western Canada , 2014 .
[4] A. McNeill,et al. Optimization of the diffusive gradients in thin films (DGT) method for simultaneous assay of potassium and plant-available phosphorus in soils. , 2013, Talanta.
[5] P. Moody,et al. Soil phosphorus tests II: A comparison of soil test–crop response relationships for different soil tests and wheat , 2013, Crop and Pasture Science.
[6] M. Bell,et al. Soil potassium—crop response calibration relationships and criteria for field crops grown in Australia , 2013, Crop and Pasture Science.
[7] M. Conyers,et al. Methodology for online biometric analysis of soil test–crop response datasets , 2013, Crop and Pasture Science.
[8] A. McNeill,et al. Soil test measures of available P (Colwell, resin and DGT) compared with plant P uptake using isotope dilution , 2013, Plant and Soil.
[9] A. Hartemink. Handbook of Soil Sciences , 2012 .
[10] D. Mandal,et al. Development of Resin Disc Soil Testing in Rice Crop in Relation to Kinetics of Nutrient Adsorption on Resin , 2012 .
[11] E. Smolders,et al. The performance of DGT versus conventional soil phosphorus tests in tropical soils - An isotope dilution study , 2012, Plant and Soil.
[12] S. Husted,et al. A new method for determination of potassium in soils using diffusive gradients in thin films (DGT) , 2012 .
[13] N. Prakongkep,et al. The forms and availability to plants of soil potassium as related to mineralogy for upland Oxisols and Ultisols from Thailand , 2012 .
[14] M. Mclaughlin,et al. Wheat grain yield response to and translocation of foliar-applied phosphorus , 2011 .
[15] George E. Rayment,et al. Soil Chemical Methods – Australasia , 2011 .
[16] A. McNeill,et al. Prediction of wheat response to an application of phosphorus under field conditions using diffusive gradients in thin-films (DGT) and extraction methods , 2010, Plant and Soil.
[17] Liu Hai-jun. Research on root growth and distribution of winter wheat under sprinkler and surface irrigation , 2010 .
[18] R. J. Gilkes,et al. Proceedings of the 19th World Congress of Soil Science: Soil solutions for a changing world, Brisbane, Australia, 1-6 August 2010. , 2010 .
[19] P. Moody,et al. Fate of potassium fertilisers applied to clay soils under rainfed grain cropping in south-east Queensland, Australia , 2009 .
[20] H. Schenk,et al. Root competition: beyond resource depletion , 2006 .
[21] Q. Ketterings,et al. Potassium Supply Rate as Measured by Exchange Membranes in a Calcareous Sand , 2006, Applied Turfgrass Science.
[22] Hao Zhang,et al. Performance of a mixed binding layer for measuring anions and cations in a single assay using the diffusive gradients in thin films technique. , 2005, Analytical chemistry.
[23] S. Young,et al. Desorption kinetics of Cd, Zn, and Ni measured in soils by DGT. , 2005, Environmental science & technology.
[24] V. Baligar. Potassium uptake by plants, as characterized by root density, species and K/Rb ratio , 1985, Plant and Soil.
[25] N. Menzies,et al. Assessment of P availability in heavily fertilized soils using the diffusive gradient in thin films (DGT) technique , 2004, Plant and Soil.
[26] E. Lombi,et al. Metal Bioaccumulation and Toxicity in Soils — Why Bother with Speciation? , 2003 .
[27] Enzo Lombi,et al. Metal Bioaccumulation and Toxicity in Soils—Why Bother with Speciation? , 2003 .
[28] Neil McKenzie,et al. Soil Physical Measurement and Interpretation for Land Evaluation , 2002 .
[29] K. Krishna. Soil fertility and crop production , 2002 .
[30] J. Rowarth,et al. Resistance to root growth and changes in the concentrations of ABA within the root and xylem sap during root-restriction stress , 1999 .
[31] D. J. Reuter,et al. Soil Analysis: An Interpretation Manual , 1999 .
[32] D. J. Greenwood,et al. Prediction and Measurement of the Decline in the Critical-K, the Maximum-K and Total Cation Plant Concentrations during the Growth of Field Vegetable Crops , 1998 .
[33] E. Salomon. Extraction of soil potassium with 0.01M calcium chloride compared to official Swedish methods , 1998 .
[34] R. Gadi,et al. In situ measurement of dissolved phosphorus in natural waters using DGT , 1998 .
[35] Wlodek Tych,et al. Kinetics of metal exchange between solids and solutions in sediments and soils interpreted from DGT measured fluxes , 1998 .
[36] E. A. Kirkby,et al. Effect of mineral nutritional status on shoot-root partitioning of photoassimilates and cycling of mineral nutrients. , 1996, Journal of experimental botany.
[37] Hao Zhang,et al. Performance Characteristics of Diffusion Gradients in Thin Films for the in Situ Measurement of Trace Metals in Aqueous Solution , 1995 .
[38] H. Marschner,et al. Partitioning of shoot and root dry matter and carbohydrates in bean plants suffering from phosphorus, potassium and magnesium deficiency , 1994 .
[39] P. Barraclough,et al. Grass yield in relation to potassium supply and the concentration of cations in tissue water , 1993, Journal of Agricultural Sciences.
[40] M. Watson,et al. Plant Analysis Handbook: A Practical Sampling, Preparation, Analysis, and Interpretation Guide , 1992 .
[41] G. E. Rayment,et al. Australian laboratory handbook of soil and water chemical methods. , 1992 .
[42] J. Jones,et al. Plant Analysis Handbook: A Practical Sampling, Preparation, Analysis, and Interpretation Guide , 1991 .
[43] I. Novozamsky,et al. Applicability of 0.01 M CaCl2 as a single extraction solution for the assessment of the nutrient status of soils and other diagnostic purposes , 1990 .
[44] R. Burton. A MECHANISTIC APPROACH , 1990 .
[45] B. Zarcinas,et al. Nitric acid digestion and multi‐element analysis of plant material by inductively coupled plasma spectrometry , 1987 .
[46] J. A. Quaggio,et al. Extraction of phosphorus, potassium, calcium, and magnesium from soils by an ion‐exchange resin procedure , 1986 .
[47] M. Kraus,et al. Individuelle Wurzelkonkurrenz und Ausnutzung der immobilen Makronährstoffe im Wurzelraum von Mais , 1986 .
[48] E. J. Kamprath,et al. Soil Nutrient Bioavailability—A Mechanistic Approach , 1985 .
[49] B. Cullis,et al. Yield Responsiveness and Response Curvature as Essential Criteria for the Evaluation and Calibration of Soil Phosphate Tests for Wheat , 1985 .
[50] D. J. Greenwood,et al. Comparison of the effects of potassium fertilizer on the yield, potassium content and quality of 22 different vegetable and agricultural crops , 1980, The Journal of Agricultural Science.
[51] L. J. Lennox. An automated procedure for the determination of phosphorus , 1979 .
[52] David S. Powlson,et al. The effects of biocidal treatments on metabolism in soil—V: A method for measuring soil biomass , 1976 .
[53] J. Zadoks. A decimal code for the growth stages of cereals , 1974 .
[54] A. Cooper. The influence of container volume, solution concentration, pH and aeration on dry matter partition by tomato plants in water culture , 1972 .
[55] P. Beckett. STUDIES ON SOIL POTASSIUM II. THE ‘IMMEDIATE’ Q/I RELATIONS OF LABILE POTASSIUM IN THE SOIL , 1964 .
[56] S. A. Barber,et al. Mechanisms for Movement of Plant Nutrients from Soil and Fertilizer to Plant Root , 1963 .