Dissolution and Elemental Analysis of Minerals, Soils and Environmental Samples
暂无分享,去创建一个
[1] P. Soltanpour,et al. Optical Emission Spectrometry , 2015 .
[2] M. Jackson,et al. Dissolution for Total Elemental Analysis , 2015 .
[3] M. Jackson. Soil Chemical Analysis , 2014 .
[4] D. L. Styris,et al. Mechanisms of palladium-induced stabilization of arsenic in electrothermal atomization atomic absorption spectroscopy , 1991 .
[5] H. Pardue,et al. Continuum-source atomic absorption spectroscopy with an echelle spectrometer adapted to a charge injection device. , 1990, Analytical chemistry.
[6] J. Winefordner,et al. Multiple mode semiconductor diode laser as a spectral line source for graphite furnace atomic absorption spectroscopy. , 1990, Analytical chemistry.
[7] A. P. D'Silva,et al. Introduction of organic solvents into inductively coupled plasmas by ultrasonic nebulization with cryogenic desolvation , 1990 .
[8] J. Riviello,et al. Chelation ion chromatography as a method for trace elemental analysis in complex environmental and biological samples. , 1990, Analytical chemistry.
[9] B. Casetta,et al. Determination of rare earth and other trace elements in rock samples by ICP-mass spectrometry: comparison with other techniques , 1990 .
[10] M. Broadhead,et al. Laser sampling ICP-MS: semi-quantitative determination of sixty-six elements in geological samples , 1990 .
[11] D. Templeton,et al. Assessment of ICP-MS for routine multielement analysis of soil samples in environmental trace element studies , 1990 .
[12] C. Brown,et al. Microwave digestion of carbonate rock samples for chemical analysis , 1990 .
[13] A. Varma. CRC Handbook of Furnace Atomic Absorption Spectroscopy , 1990 .
[14] C. Reynolds,et al. Dissolution of metals from soils and sediments with a microwave-nitric acid digestion technique. , 1990 .
[15] J. Tyson,et al. Use of masking agents in the determination of lead in tap water by flame atomic absorption spectrometry with flow injection pre-concentration. , 1990, The Analyst.
[16] D. Kimbrough,et al. Acid digestion for sediments, sludges, soils, and solid wastes. A proposed alternative to EPA SW 846 Method 3050 , 1989 .
[17] C. Warren,et al. Leachability and partitioning of elements in ferromagnetic fly ash particles , 1989 .
[18] José Luis Burguera,et al. Flow Injection Atomic Spectroscopy , 1989 .
[19] D. Lisk,et al. Element composition of municipal refuse ashes and their aqueous extracts from 18 incinerators , 1989, Bulletin of environmental contamination and toxicology.
[20] A. L. Gray,et al. Applications of Inductively Coupled Plasma Mass Spectrometry , 1989 .
[21] B. V. L’vov. The analytical use of atomic absorption spectra , 1989 .
[22] N. W. Barnett,et al. Simplex optimisation of experimental conditions in inductively coupled plasma atomic emission spectrometry with organic solvent introduction , 1989 .
[23] J. Winefordner,et al. High-resolution continuum source atomic absorption spectrometry in an air-acetylene flame with photodiode array detection , 1989 .
[24] K. Karstensen,et al. Multi-element analysis of a city waste incineration ash reference sample by inductively coupled plasma atomic emission spectrometry , 1989 .
[25] L. J. Lund,et al. Dissolution of soils and geological materials for simultaneous elemental analysis by inductively coupled plasma optical emission spectrometry and atomic absorption spectrometry , 1989 .
[26] A. Walsh. The application of atomic absorption spectra to chemical analysis , 1989 .
[27] M. Janghorbani,et al. Isotopic determination of selenium in biological materials with inductively coupled plasma mass spectrometry. , 1989, The Analyst.
[28] S. Xiao-quan,et al. An oblique section hydride generator for the simultaneous determination of arsenic, antimony and bismuth in geological samples by inductively coupled plasma-atomic emission spectrometry , 1988 .
[29] D. Loring,et al. An intercalibration exercise for trace metals in marine sediments , 1988 .
[30] I. Novozamsky,et al. Continuous-flow technique for generation and separation of methyl borate from iron-containing matrices with subsequent determination of boron by ICP-AES. , 1988 .
[31] D. Littlejohn,et al. Extended range background correction in continuum source atomic absorption spectrometry , 1988 .
[32] D. Koppenaal. Atomic mass spectrometry. , 1988, Analytical chemistry.
[33] M. Boyle,et al. Effect of municipal solid waste leachate composition on zinc migration through soils , 1987 .
[34] C. W. Francis,et al. Leaching of toxic metals from incinerator ashes , 1987 .
[35] L. B. Fischer,et al. Application of microwave digestion to the analysis of peat , 1987 .
[36] Philip J. Potts,et al. A handbook of silicate rock analysis , 1987 .
[37] D. Bass,et al. Mass spectral investigation of mechanisms of lead vaporization from a graphite surface used in electrothermal atomizers , 1987 .
[38] H. Kingston,et al. Microwave energy for acid decomposition at elevated temperatures and pressures using biological and botanical samples. , 1986, Analytical chemistry.
[39] L. B. Fischer. Microwave dissolution of geologic material: application to isotope dilution analysis , 1986 .
[40] J. Goulter,et al. Performance of a commercial maximum dissolved solids nebuliser for inductively coupled plasma spectrometry , 1985 .
[41] R. Browner,et al. Sample Introduction Techniques for Atomic Spectroscopy , 1984 .
[42] R. Browner,et al. Sample Introduction: The Achilles' Heel of Atomic Spectroscopy? , 1984 .
[43] U. Voellkopf,et al. Interference in the analysis of biological samples using the stabilized temperature platform furnace and Zeeman background correction , 1984 .
[44] G. Hieftje,et al. A New Background-Correction Method for Atomic Absorption Spectrometry , 1983 .
[45] Jaromir Ruzicka,et al. Flow injection analysis. From test tube to integrated microconduits , 1983 .
[46] K. Stewart. Flow Injection Analysis , 1983 .
[47] J. M. Soileau,et al. Mobility in soil and plant availability of metals derived from incinerated municipal refuse. , 1983, Environmental science & technology.
[48] A. L. Gray,et al. Development progress in plasma source mass spectrometry , 1983 .
[49] K. Govindaraju,et al. Geostandards and geochemical analysis , 1983 .
[50] J. F. Wolcott,et al. Fabrication of a Babington-Type Nebulizer for ICP Sources , 1982 .
[51] L. R. Layman,et al. Glass frit nebulizer for atomic spectrometry , 1982 .
[52] W. Slavin,et al. Magnesium nitrate as a matrix modifier in the stabilized temperature platform furnace , 1982 .
[53] R. Browner,et al. Measurement of aerosol transport efficiency in atomic spectrometry , 1982 .
[54] R. Barnes,et al. Complexation of some transition metals, rare earth elements, and thorium with a poly(dithiocarbamate) chelating resin , 1981 .
[55] Alan L. Gray,et al. Inductively coupled argon plasma as an ion source for mass spectrometric determination of trace elements , 1980 .
[56] Morris Bader,et al. A systematic approach to standard addition methods in instrumental analysis , 1980 .
[57] P. Liddell,et al. Application of a modulated magnetic field to a graphite furnace in Zeeman effect atomic absorption spectrometry , 1980 .
[58] R. Nadkarni. Multitechnique multielemental analysis of coal and fly ash , 1980 .
[59] J. C. Loon,et al. Analytical atomic absorption spectroscopy , 1980 .
[60] R. Stephens,et al. Zeeman Modulated Atomic Absorption Spectroscopy , 1980 .
[61] V. Fassel. Simultaneous or sequential determination of the elements at all concentration levels - the renaissance of an old approach , 1979 .
[62] H. Uchida,et al. Determination of major and minor elements in silicates by inductively coupled plasma emission spectrometry , 1979 .
[63] N. McQuaker,et al. Calibration of an inductively coupled plasma-atomic emission spectrometer for the analysis of environmental materials , 1979 .
[64] R. Barnes,et al. Concentration and spectrochemical determination of trace metals in urine with a poly(dithiocarbamate) resin and inductively coupled plasma-atomic emission spectrometry. , 1979, Analytical chemistry.
[65] W. Slavin,et al. Reduction of matrix interferences for lead determination with the L'vov platform and the graphite furnace , 1979 .
[66] W. Lindsay,et al. Development of a DTPA soil test for zinc, iron, manganese and copper , 1978 .
[67] Steven D. Brown. Zeeman Effect-Based Background Correction in Atomic Absorption Spectrometry , 1977 .
[68] W. J. Haas,et al. Multielement detection limits and sample nebulization efficiencies of an improved ultrasonic nebulizer and a conventional pneumatic nebulizer in inductively coupled plasma-atomic emission spectrometry , 1977 .
[69] K. Govindaraju,et al. Automated optical emission spectrochemical bulk analysis of silicate rocks with microwave plasma excitation , 1976 .
[70] S. R. Koirtyohann,et al. Wet ashing of some biological samples in a microwave oven. , 1975, Analytical chemistry.
[71] T. Surles,et al. Interference of molecular spectra due to alkali halides in nonflame atomic absorption spectrometry , 1975 .
[72] V. Fassel,et al. EMISSION SPECTROMETRIC DETECTION OF THE ELEMENTS AT THE NANOGRAM PER MILLILITER LEVEL USING INDUCTION-COUPLED PLASMA EXCITATION. , 1969 .
[73] B. Bernas. New method for decomposition and comprehensive analysis of silicates by atomic absorption spectrometry , 1968 .
[74] G. K. Billings,et al. Atomic Absorption Spectrometry in Geology , 1967 .
[75] J. W. Robinson. Atomic Absorption Spectroscopy , 1966 .
[76] Humphrey John Moule Bowen,et al. Trace Elements in Biochemistry , 1966 .
[77] Y. Kanehiro,et al. Fusion with Sodium Carbonate for Total Elemental Analysis , 1965 .
[78] C. Alkemade,et al. Double-Beam Method of Spectral Selection with Flames , 1955 .
[79] W. Hillebrand. The Analysis of Silicate and Carbonate Rocks , 1907 .