Liquid matrices for secondary ion mass spectrometry
暂无分享,去创建一个
[1] W. V. Ligon,et al. Mass spectrometric determination of dipeptides after formation of a surface active derivative , 1986 .
[2] E. Pauw,et al. Hydrophobic reverse derivitization for secondary ion mass spectrometry/fast atom bombardment , 1985 .
[3] M. Rivière,et al. Structural determination of unsaturated mycolic acids by fast atom bombardment and tandem mass spectrometry analyses of their amino-alcohol derivatives , 1985 .
[4] J. Watson,et al. Thermally assisted fast atom bombardment: a new approach toward optimization of analyses by fast atom bombardment mass spectrometry. , 1985, Analytical chemistry.
[5] B. Musselman,et al. Utility of silver ion attachment in fast atom bombardment mass spectrometry. , 1985, Analytical chemistry.
[6] D. Briggs,et al. Analysis of polymer surfaces by SIMS. Part 5. The effects of primary ion mass and energy on secondary ion relative intensities , 1985 .
[7] S. Becker,et al. Die bildung von monoxid- und dicarbidionen der lanthanide in laser- und funkenplasmen , 1985 .
[8] T. Keough. Cationization of organic molecules using fast atom bombardment mass spectrometry , 1985 .
[9] G. Didonato,et al. Derivatization of ketosteroids for fast atom bombardment mass spectrometry. , 1985, Biomedical mass spectrometry.
[10] M. Clench,et al. Surface effects in FAB mapping of proteins and peptides , 1985 .
[11] E. Takeuchi,et al. Preparation and investigation of polymer-modified electrodes by square wave voltammetry , 1985 .
[12] B. Divisia-Blohorn,et al. Matrix effects in fast atom bombardment mass spectrometry of cationic iridium(III) and rhodium(III) coordination complexes , 1985 .
[13] G. Puzo,et al. Differentiation of some underivatised anomeric methyl glycosides by f.a.b. and m.i.k.e. mass spectrometry , 1985 .
[14] G. Bojesen. Fast atom bombardment mass spectrometry of coordination compounds , 1985 .
[15] M. Gross,et al. Fast atom bombardment and laser desorption mass spectrometry for determination of alkyltriphenylphosphonium salts. , 1985, Analytical chemistry.
[16] M. Gross,et al. Abundances of molecular ion species desorbed by fast atom bombardment: observation of (M + 2H)+.cntdot. and (M + 3H)+.cntdot. , 1985 .
[17] C. Koval,et al. Circuit for optimally matching instrumental output voltage levels to the input voltage levels of analog-to-digital converters , 1985 .
[18] G. Didonato,et al. Charge-transfer derivatization in fast-atom-bombardment mass spectrometry , 1985 .
[19] C. Poole,et al. Fast atom bombardment mass spectra of some alkylammonium nitrate and thiocyante salts , 1985 .
[20] J. L. Gower. Matrix compounds for fast atom bombardment mass spectrometry , 1985 .
[21] G. Puzo,et al. Analysis of carbohydrates by fast atom bombardment mass spectrometry: 2—Influence of the matrix and the nature of the alkaline cations in the attachment process of an alkaline cation to a disaccharide molecule , 1985 .
[22] Joseph E. Campana,et al. Molecular secondary ion mass spectrometry: New dimensions in chemical characterization , 1985 .
[23] W. Vetter,et al. Fast atom bombardment mass spectrum of β-carotene , 1985 .
[24] W. V. Ligon,et al. The analysis of inorganic anions from liquid solutions using cationic surfactants and negative secondary ion mass spectrometry , 1985 .
[25] G. Burger,et al. Measurement of average energy required to produce an ion pair (W value) for low-energy ions in several gases , 1985 .
[26] S. Wong,et al. Evidence for a surface self‐cleaning sputtering mechanism in fast atom bombardment mass spectrometry , 1985 .
[27] S. Unger,et al. Structure of the quinone antibiotic EM5519 and the behavior of quinones in fast atom bombardment mass spectrometry. , 1985, The Journal of antibiotics.
[28] C. Fenselau,et al. Comparison of thermospray and fast atom bombardment mass spectrometry as solution-dependent ionization techniques. , 1984, Analytical chemistry.
[29] J. Meili,et al. A new versatile matrix for fast atom bombardment analysis , 1984 .
[30] C. Fenselau,et al. LARGE CLUSTER IONS DESORBED FROM ORGANIC SALTS UNDER PARTICLE BOMBARDMENT. , 1984 .
[31] L. Ernst,et al. Ligand Exchange in FAB Mass Spectrometry of Monomerie and Dimeric Corrinoids , 1984 .
[32] P. J. Todd,et al. Secondary ion mass spectrometry of pyrene: enhancement of molecular ion emission by antimony trichloride , 1984 .
[33] E. Pauw,et al. Oxidation-reduction processes occurring in secondary ion mass spectrometry and fast atom bombardment of glycerol solutions , 1984 .
[34] D. Kidwell,et al. Analysis of impregnated charcoals by desorption ionization mass spectrometry. , 1984, Analytical chemistry.
[35] W. V. Ligon,et al. The use of surfactants to modify molar response factors in the secondary ion mass spectrometry of liquid surfaces , 1984 .
[36] G. Puzo,et al. Matrix effects in the fast atom bombardment protonation of carbohydrates , 1984 .
[37] J. C. Cook,et al. Fast atom bombardment mass spectroscopy (FABMS) of polyoxoanions , 1984 .
[38] E. De Pauw,et al. On the influence of hydrophobicity in the SIMS spectra of amino acids in glycerol matrix. , 1984, Biochemical and biophysical research communications.
[39] R. Caprioli,et al. Enzyme reaction rates determined by fast atom bombardment mass spectrometry , 1984 .
[40] J. McCloskey,et al. Dehalogenation reactions in fast atom bombardment mass spectrometry. , 1984, Analytical chemistry.
[41] T. Blumenthal,et al. Cluster Chemistry: XXVIII. Utility of fast atom bombardment mass spectrometry for the characterisation of high molecular weight complexes containing metal clusters , 1984 .
[42] E. Pauw,et al. Secondary ion mass spectrometry of some promazines and photochemistry of chlorpromazine in glycerol , 1984 .
[43] G. Dube. The behaviour of aromatic hydrocarbons under fast atom bombardment , 1984 .
[44] D. Hercules,et al. Laser mass spectrometry of diquaternary ammonium salts , 1984 .
[45] W. Lehmann,et al. Investigations on basic aspects of fast atom bombardment mass spectrometry: Matrix effects, sample effects, sensitivity and quantification , 1984 .
[46] W. V. Ligon,et al. Quantitative behavior of surfactants at the liquid/vacuum interface by secondary ion mass spectrometry , 1984 .
[47] C. Fenselau. Fast Atom Bombardment and Middle Molecule Mass Spectrometry , 1984 .
[48] R. Caprioli,et al. Quantitative aspects of fast atom bombardment mass spectrometry , 1984 .
[49] M. Prescott,et al. Poly(ethyleneglycol) as a calibrant and solvent for fast atom bombardment mass spectrometry: Application to carbohydrates , 1984 .
[50] L. Ernst,et al. Fast Atom Bombardment Mass Spectrometry of the Vitamin B12 Analogues Hydrogenobalamin and Cupribalamin , 1984 .
[51] R. Lattimer. Fast atom bombardment mass spectrometry of polyglycols , 1984 .
[52] R. Caprioli. Fast atom bombardment mass spectrometry for determination of dissociation constants of weak acids in solution , 1983 .
[53] E. Pauw. Ion promotion in fast-atom bombardment mass spectrometry by charge transfer complexation , 1983 .
[54] Kelvin S. L. Chan,et al. Energy deposition in desorption ionization , 1983 .
[55] A. Benninghoven. Some aspects of secondary ion mass spectrometry of organic compounds , 1983 .
[56] C. Longstaff,et al. Negative ion fast atom bombardment mass spectrometry. In situ reactions of boronic acids with triols and related compounds, sugars and nucleosides , 1983 .
[57] R. Murphy,et al. Interlaboratory reproducibility of relative abundances of ion currents in fast atom bombardment mass spectral data , 1983 .
[58] W. V. Ligon. Studies of the mixing of glycerol in glycerol at the glycerol-vacuum interface using secondary ion mass spectrometry , 1983 .
[59] J. Yergey,et al. Doubly-charged ions in desorption mass spectrometry , 1983 .
[60] Kelvin S. L. Chan,et al. Factors affecting mass spectral sensitivity for ions sampled by field evaporation from a liquid matrix , 1983 .
[61] Jack M. Miller. Fast atom bombardment (FAB) mass spectrometry: a new technique for the organometallic chemist , 1983 .
[62] R. Cooks,et al. Matrix effects in secondary ion mass spectrometry , 1983 .
[63] R. Colton,et al. Liquid metal substrate for dynamic secondary ion mass spectrometry , 1983 .
[64] C. Magee. Sputtering of organic molecules , 1983 .
[65] C. Fenselau,et al. Analysis of glucuronides by fast atom bombardment , 1983 .
[66] J. Meili,et al. Matrix effects in Fast Atom Bombardment (FAB) mass spectrometry , 1983 .
[67] R. Cooks,et al. Desorption ionization mass spectrometry , 1983 .
[68] R. Johnstone,et al. Fast atom bombardment of crown ether/cation complexes in solution , 1983 .
[69] M. Przybylski. Fast atom bombardment and field desorption mass spectrometry: Comparative aspects of analytical development and bioanalytical application , 1983 .
[70] M. Iwamori,et al. 1,1,3,3-Tetramethylurea and triethanolamine as a new useful matrix for fast atom bombardment mass spectrometry of gangliosides and neutral glycosphingolipids. , 1983, Journal of biochemistry.
[71] F. H. Field,et al. Fast atom bombardment study of glycerol: mass spectra and radiation chemistry , 1982 .
[72] Stephen A. Martin,et al. Optimization of experimental procedures for fast atom bombardment mass spectrometry , 1982 .
[73] K. Rinehart. Fast Atom Bombardment Mass Spectrometry , 1982, Science.
[74] E. Pauw,et al. Ion-beam-induced effects in secondary ion mass spectrometry of inorganic salts , 1982 .
[75] Makoto Suzuki,et al. Diethanolamine assisted secondary ion mass spectrometry of naturally occurring complex oligosaccharides , 1982 .
[76] D. Briggs,et al. Analysis of polymer surfaces by SIMS 1. An investigation of practical problems , 1982 .
[77] H. Kambara,et al. Secondary ion mass spectra of nonvolatile bioorganic compounds , 1981 .
[78] Ming L. Yu,et al. Formation of molecular ions during sputtering , 1981 .
[79] Ming L. Yu,et al. Emission mechanisms of titanium oxide ions during sputtering , 1981 .
[80] J. Rabalais,et al. Ejection dynamics and electronic processes governing secondary particle emission in SIMS , 1981 .
[81] R. Behrisch,et al. Sputtering by Particle Bombardment III , 1981 .
[82] T. Keough,et al. Acid-enhanced field desorption mass spectrometry of zwitterions , 1981 .
[83] R. Cooks,et al. Molecular secondary ion mass spectrometry. , 1980, Analytical chemistry.
[84] R. Cooks,et al. Phenanthroline cationization by various metals in secondary ion mass spectrometry , 1980 .
[85] F. J. Holler,et al. Modular chemically inert mixer for flow and stopped-flow experiments , 1980 .
[86] D. Nygaard. Plasma emission determination of trace heavy metals in salt water matrixes , 1979 .
[87] Joseph D. Andrade,et al. Low-Temperature Positive Secondary Ion Mass Spectrometry of Neat and Argon-Diluted Organic Solids , 1978 .
[88] A. Benninghoven,et al. Detection, identification and structural investigation of biologically important compounds by secondary ion mass spectrometry. , 1978, Analytical chemistry.
[89] A. Benninghoven,et al. Empirical formula for the calculation of secondary ion yields from oxidized metal surfaces and metal oxides , 1977 .
[90] A. Benninghoven,et al. Secondary ion mass spectrometery: A new analytical technique for biologically important compounds , 1977 .
[91] A. Benninghoven,et al. Surface investigation of solids by the statical method of secondary ion mass spectroscopy (SIMS) , 1973 .
[92] D. Evans. Diffusion barrier model for the cyanide ion-selective electrode. , 1972, Analytical chemistry.