Stored waveform inverse Fourier transform (SWIFT) ion excitation in trapped-ion mass spectometry: Theory and applications
暂无分享,去创建一个
[1] A. Marshall. Ion Cyclotron Resonance and Nuclear Magnetic Resonance Spectroscopies: Magnetic Partners for Elucidation of Molecular Structure and Reactivity , 1996 .
[2] A. Marshall,et al. Resolution and chemical formula identification of aromatic hydrocarbons and aromatic compounds containing sulfur, nitrogen, or oxygen in petroleum distillates and refinery streams. , 1996, Analytical chemistry.
[3] S. Haebel,et al. High front-end resolution collision-induced dissociation in Fourier transform ion cyclotron resonance mass spectrometry , 1995 .
[4] S. Guan,et al. Linearized dipolar excitation and detection and quadrupolarized axialization in a cylindrical ion cyclotron resonance ion trap , 1995 .
[5] Mitchell,et al. Cyclotron motion of two Coulombically interacting ion clouds with implications to Fourier-transform ion cyclotron resonance mass spectrometry. , 1995, Physical review. E, Statistical physics, plasmas, fluids, and related interdisciplinary topics.
[6] A. J. Peurrung,et al. Analysis of space-charge effects in cyclotron resonance mass spectrometry as coupled gyrator phenomena , 1995 .
[7] S. Haebel,et al. Difference measurements and shaped waveforms applied to Hadamard transform FT/ICR , 1995 .
[8] S. Guan,et al. Ultrahigh-resolution matrix-assisted laser desorption/ionization Fourier transform ion cyclotron resonance mass spectra of peptides , 1995 .
[9] L. Paša-Tolić,et al. Collision-induced dissociation for mass spectrometric analysis of biopolymers: high-resolution Fourier transform ion cyclotron resonance MS4. , 1994, Analytical chemistry.
[10] P. Limbach,et al. Linear excitation and detection in Fourier transform ion cyclotron resonance mass spectrometry , 1994 .
[11] F W McLafferty,et al. Collisional activation of large multiply charged ions using Fourier transform mass spectrometry. , 1994, Analytical chemistry.
[12] R. Cooks,et al. Selective Injection and Isolation of Ions in Quadrupole Ion Trap Mass Spectrometry Using Notched Waveforms Created Using the Inverse Fourier Transform , 1994 .
[13] J. Marto,et al. Wide-mass-range axialization for high-resolution Fourier-transform ion cyclotron resonance mass spectrometry of externally generated ions. , 1994, Rapid communications in mass spectrometry : RCM.
[14] S. Guan,et al. Broadband axialization in an ion cyclotron resonance ion trap , 1994 .
[15] Scott A. McLuckey,et al. Filtered noise field signals for mass-selective accumulation of externally formed ions in a quadrupole ion trap , 1994 .
[16] M. Wahl,et al. Elimination of frequency drift from Fourier transform ion cyclotron resonance mass spectra by digital quadrature heterodyning: ultrahigh mass resolving power for laser-desorbed molecules. , 1993, Analytical chemistry.
[17] Yongqing Huang,et al. Multiple excitation collisional activation in Fourier‐transform mass spectrometry , 1993 .
[18] S. Guan,et al. Two-dimensional Fourier transform ion cyclotron resonance mass spectrometry/mass spectrometry with stored-waveform ion radius modulation , 1993 .
[19] A. Marshall,et al. Stored waveform inverse Fourier transform axial excitation/ejection for quadrupole ion trap mass spectrometry. , 1993, Analytical chemistry.
[20] Marshall,et al. Resonant excitation of relativistic-ion cyclotron orbital motion. , 1993, Physical review. A, Atomic, molecular, and optical physics.
[21] P. Limbach,et al. Experimental determination of the number of trapped ions, detection limit, and dynamic range in Fourier transform ion cyclotron resonance mass spectrometry , 1993 .
[22] M. Kretzschmar,et al. Single particle motion in a Penning trap: description in the classical canonical formalism , 1992 .
[23] B. Whitaker. State-selected and state-to-state ion—molecule reaction dynamics. Part 1. Experiment : Advances in chemical physics volume 82. Edited by Cheuk-Yiu Ng and Michael Baer. John Wiley and Sons, Inc., New York, 1992, 686 pp., $140 , 1992 .
[24] J. I. Brauman,et al. Low energy collision induced dissociation: phase-shifting excitation control of ion kinetic energy in ion cyclotron resonance spectrometry , 1992 .
[25] W. Whitten,et al. Theory of high-resolution mass spectrometry achieved via resonance ejection in the quadrupole ion trap , 1992 .
[26] J. I. Brauman,et al. Control of ion kinetic energy in ion cyclotron resonance spectrometry: Very-low-energy collision-induced dissociation , 1992 .
[27] M. B. Comisarow,et al. Modelling Coulomb effects in Fourier-transform ion cyclotron resonance mass spectrometry by charged disks and charged cylinders , 1992 .
[28] N. Nibbering. Principles and applications of Fourier transform ion cyclotron resonance mass spectrometry. Plenary lecture , 1992 .
[29] R. Freeman,et al. Selective Excitation in High-Resolution NMR , 1991 .
[30] S. Guan. Linear response theory of ion excitation for Fourier transform mass spectrometry , 1991, Journal of the American Society for Mass Spectrometry.
[31] S. Beu,et al. Modular data system for selective wave-form excitation and trapping experiments in Fourier transform mass spectrometry , 1991 .
[32] A. Marshall,et al. General theory of excitation in ion cyclotron resonance mass spectrometry , 1991 .
[33] D. W. Mitchell. Averaging methods applied to quadrupolar FT-ICR perturbation problems , 1991 .
[34] T. R. Trautman,et al. Sustained off-resonance irradiation for collision-activated dissociation involving Fourier transform mass spectrometry. Collision-activated dissociation technique that emulates infrared multiphoton dissociation , 1991 .
[35] S. Guan. Optimal phase modulation in stored waveform inverse Fourier transform excitation for Fourier transform mass spectrometry. II. Magnitude spectrum smoothing , 1990 .
[36] R. Smalley,et al. Direct injection supersonic cluster beam source for FT‐ICR studies of clusters , 1990 .
[37] A. Marshall,et al. Laboratory-frame and rotating-frame ion trajectories in ion cyclotron resonance mass spectrometry , 1990 .
[38] D. Russell,et al. High precision arbitrary waveform generator for ion selection in Fourier transform ion cyclotron resonance , 1990 .
[39] T. Marks. Bonding energetics in organometallic compounds , 1990 .
[40] S. Guan,et al. Optimal phase modulation in stored wave form inverse Fourier transform excitation for Fourier transform mass spectrometry. I. Basic algorithm , 1990 .
[41] D. Russell,et al. Field-corrected ion cell for ion cyclotron resonance , 1990 .
[42] A. Marshall,et al. Elimination of z-ejection in Fourier transform ion cyclotron resonance mass spectrometry by radio frequency electric field shimming. , 1990, Analytical chemistry.
[43] F. Verdun,et al. Fourier Transforms in NMR, Optical, and Mass Spectrometry: A User's Handbook , 1990 .
[44] R. L. Hunter,et al. Impulse excitation for Fourier-transform mass spectrometry , 1989 .
[45] R. March,et al. Quadrupole storage mass spectrometry , 1989 .
[46] S. Guan,et al. Personal computer based Fourier transform ion cyclotron resonance mass spectrometer , 1988 .
[47] Geoffrey Bodenhausen,et al. Broad-band two-dimensional Fourier transform ion cyclotron resonance , 1988 .
[48] S. Mullen,et al. Formation, reactivity, and proposed structures of gas-phase triosmium cluster ions: H2Os3(CO)10+ and its dimers, trimers, and fragments , 1988 .
[49] A. Marshall,et al. High-resolution multiple-ion simultaneous monitoring by means of multiple-foldover Fourier transform ion cyclotron resonance mass spectrometry. , 1988, Analytical chemistry.
[50] A. Marshall,et al. Stored waveform simultaneous mass-selective ejection/excitation for Fourier transform ion cyclotron resonance mass spectrometry , 1987 .
[51] Geoffrey Bodenhausen,et al. Two-dimensional fourier transform ion cyclotron resonance mass spectrometry , 1987 .
[52] A. Marshall,et al. Effect of time-domain dynamic range on stored waveform excitation for Fourier transform ion cyclotron resonance mass spectrometry. , 1987, Rapid communications in mass spectrometry : RCM.
[53] A. Marshall,et al. Phase-modulated stored waveform inverse Fourier transform excitation for trapped ion mass spectrometry. , 1987, Analytical chemistry.
[54] A. Marshall,et al. Extension of dynamic range in Fourier transform ion cyclotron resonance mass spectrometry via stored waveform inverse Fourier transform excitation. , 1986, Analytical chemistry.
[55] Lowell S. Brown,et al. Geonium theory: Physics of a single electron or ion in a Penning trap , 1986 .
[56] A. Marshall,et al. Tailored excitation for Fourier transform ion cyclotron mass spectrometry , 1985 .
[57] M. Gross,et al. Space charge effects in Fourier transform mass spectrometry. Mass calibration. , 1984, Analytical chemistry.
[58] A. Marshall,et al. Fourier transform ion cyclotron mass spectrometry using pseudo-ramdom-noise excitation , 1984 .
[59] A. Marshall,et al. Ion cyclotron resonance excitatio/de-excitation: A basis for Stochastic fourier transform ion cyclotron mass spectrometry , 1984 .
[60] G. Gabrielse. Detection, damping, and translating the center of the axial oscillation of a charged particle in a Penning trap with hyperbolic electrodes , 1984 .
[61] Melvin B. Comisarow,et al. Cubic trapped-ion cell for ion cyclotron resonance , 1981 .
[62] A. Marshall,et al. Theory of Fourier transform ion cyclotron resonance mass spectroscopy: Response to frequency‐sweep excitation , 1980 .
[63] M. M. Bursey,et al. Ion cyclotron resonance spectrometry , 1976 .
[64] A. Marshall,et al. Frequency-sweep fourier transform ion cyclotron resonance spectroscopy , 1974 .
[65] A. Marshall,et al. Fourier Transform Ion Cyclotron Resonance Spectroscopy , 1974 .
[66] H. Hill,et al. Fourier synthesized excitation of nuclear magnetic resonance with application to homonuclear decoupling and solvent line suppression , 1973 .
[67] D. A. Dunnett. Classical Electrodynamics , 2020, Nature.
[68] David M. Miller,et al. Handbook of Mathematical Functions With Formulas, Graphs and Mathematical Tables (National Bureau of Standards Applied Mathematics Series No. 55) , 1965 .