R.J. Cotter, “Time-of-flight Mass Spectrometry,” ACS Symposium Series 549, American Chemical Society (1994), p. 17ff. |
C.C. Vera, R. Zubarev, H. Ehring, P. Hakansson, B.U.R. Sunqvist, “A three-point calibration procedure for matrix-assisted laser desorption/ionization mass spectrometry utilizing multiply charged ions and their mean initial velocities,” Rapid Comm. Mass Spectrom., 10 (1996), p. 1429-1432. |
P. Juhasz, J.L. Vestal, S.A. Martin, “On the initial velocity of ions generated by matrix-assisted laser desorption ionization and its effect on the calibration of delayed extraction time-of-flight mass spectra,” J. Am. Soc. Mass Spectrom., 8 (1997), p. 209-217. |
S.M. Colby and J.P. Reilly, “Space-velocity correlation focusing,” Anal. Chem., 68 (1996), p. 1419-1428. |
N.P. Christian, S.M. Colby, L. Giver, C.T. Houston, R.J. Arnold, A.D. Ellington, J.P. Reilly, “High resolution matrix-assisted laser desorption/ionization time-of-flight analysis of single-stranded DNA of 27 to 68 nucleotides in length,” Rapid Comm. Mass Spectrom., 9 (1995), p. 1061-1066. |
R.S. Brown and J.J. Lennon, “Sequence-specific fragmentation of Maldi protein/peptide ions,” Anal. Chem., 67 (1995), p. 3990-3999. |
R.M. Whittal and L. Li, “High-resolution matrix-assisted laser desorption/ionization in a linear time-of-flight mass spectrometer,” Anal. Chem. 67 (1995), p. 1950-1954. |
W. Spendley, G.R. Hext. F.R. Himsworth, “Sequential Application of simplex designs in optimisation and evolutionary operation,” Technometrics, 4 (1962), p. 441-461. |
M.J.D. Powell, “An efficient method for finding the minimum of a function of several variables without calculating derivatives,” The Computer Journal, 7 (1965), p. 155-162. |
J.A. Nelder and R. Mead, “A simplex method for function minimization,” The Computer Journal, 7 (1965), p. 308-313. |
W.H. Press, S.A. Teukolsky, W.T. Vetterling, B.P. Flannery, “Numerical Recipes in C: The Art of Scientific Computing,” Second Edition, Cambridge Univesity Press (1992). |
R.J. Arnold and J.P. Reilly, “High-resolution time-of-flight mass spectra of alkanethiolate-coated gold nanocrystals,” J. Am. Chem. Soc., 120 (1998), pp. 1528-1532. |
J.A. Panitz, “The crystallograph distribution of field-desorbed species,” J. Vac. Sci. Technol., 11 (1974), p. 206-210. |
J.A. Panitz, S.B. McLane, E.W. Muller, “The atom-probe field ion microscope,” Rev. Sci. Instrum., 39 (1968), pp. 83-86. |
J.A. Panitz, S.B. McLane, E.W. Muller, “Calibration of the atom probe FIM,” Rev. Sci. Instrum., 40 (1969), pp. 1321-1324. |
Robert S. Brown et al., “Sequence-Specific Fragmentation of Matrix-Assisted Laser-Desorbed Protein/Peptide Ions,” Analytical Chemistry, American Chemical Society, vol. 67 (No. 21), p. 3990-3999, (May 18, 1995). |
Steven M. Colby et al., “Space-Velocity Correlation Focusing,” Anal. Chem., vol. 68 (No. 8), p. 1419-1428, (Apr. 15, 1996). |
Ricky D. Edmondson et al., “Evaluation of Matrix-Assisted Laser Desorption Ionization—Time-of-Flight Mass Measurement Accuracy by Using Delayed Extraction,” Journal American Society Mass Spectrometry, No. 7, p. 995-1001, (May 18, 1996). |
Jaran Jai-Nhuknan et al., “Negative Ion Matrix-Assisted Laser Desorption/Ionization Time-of-Flight Post-Source Decay Calibration By Using Fibrinopeptide B,” Journal of Am Soc Mass Spectrom, No. 9, p. 540-544, (May 18, 1998). |
W. J. Jia et al., “A Tandem Reflectron Time-of-flight Mass Spectrometer for the Investigation of Laser Photofragmentation of Molecular Ions,” Rapid Communications in Mass Spectrometery, p. 761-766, (May 18, 1995). |
Peter Juhasz et al., “On the Initial Velocity of Ions Generated by Matrix-Assisted Laser Desorption Ionization and its Effect on the Calibration of Delayed Extraction Time-of-Flight Mass Spectra,” Journal of Am Soc Mass Spectrom., p. 209-217, (May 18, 1997). |
Gary R. Kinsel, “Design and Calibration of an Electrostatic Energy Analyzer-Time-of-Flight Mass Spectrometer for Measurement of Laser-Desorbed Ion Kinetic Energies,” J. American Soc. for Mass Spectrom., p. 619-626, (May 18, 1995). |
Erwin W. Mueller et al., “The Atom-Probe Field Ion Microscope,” The Review of Scientific Instruments, vol. 39 (No. 1), p. 83-86, (Jan. 18, 1968). |
J.A. Panitz, “A Simplified Calibration Sequence for Single-Atom Mass Spectrometers,” Sandia Laboratories (Albuquerque, New Mexico), p. 1-16, (Oct. 18, 1975). |
J.A. Panitz, “The crystallographic distribution of field-desorbed species,” J. Vac. Sci Technol., vol. 11 (No. 1), p. 206-210, (May 18, 1974). |
John A. Panitz et al., “Calibration of the Atom Probe FIM,” Review of Scientific Instruments, vol. 40 (No. 10), p. 1321-1324, (Oct. 18, 1969). |
T.T. Tsong, “Time-of-Flight Ion Energy and Ion Reaction Time Spectrometry, Spectral Line Shape and Mechanisms of Ion Formation,” International Journal of Mass Spectrometry and Ion Processes, Elsevier Science Publishers (Amsterdam), No. 70, p. 1-21,(May 18, 1986). |
Cesar Costa Vera et al., “A Three-Point Calibration Procedure for Matrix-assisted Laser Desorption/Ionization Mass Spectrometry Utilizing Multiply Charged Ions and Their Mean Initial Velocities,” Rapid Communications in Mass Spectrometry, John Wiley & Sons, Ltd., p. 1429-1432, (May 18, 1996). |
Randy M. Whittal et al., “High-Resolution Matrix-Assisted Laser Desorption/Ionization in a Linear Time-of-Flight Mass Spectrometer,” Anal. Chemistry, p. 1950-1954, (May 18, 1995). |
G. Brinkmalm et al., “A plasma desorption time-of-flight mass spectrometer with a single-stage ion mirror: improved resolution and calibration procedure,” International Journal of Mass Spectrometry and Ion Processes, Elsevier Science Publishers (Amsterdam), No. 114, p. 183-207, (May 18, 1992). |