ON THE QUESTION OF SALT BRIDGES OF CATIONIZED AMINO ACIDS IN THE GAS PHASE: GLYCINE AND ARGININE
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[1] Michael T. Bowers,et al. Gas-Phase Conformation of Biological Molecules: Bradykinin , 1996 .
[2] M. Gordon,et al. On the Number of Water Molecules Necessary To Stabilize the Glycine Zwitterion , 1995 .
[3] R. A. Jockusch,et al. Is arginine a zwitterion in the gas phase? , 1997, Journal of the American Chemical Society.
[4] T. Wyttenbach,et al. Inclusion of a MALDI ion source in the ion chromatography technique: conformational information on polymer and biomolecular ions , 1995 .
[5] M. Bowers,et al. A hybrid double-focusing mass spectrometer—High-pressure drift reaction cell to study thermal energy reactions of mass-selected ions , 1990 .
[6] Dennis R. Salahub,et al. Optimization of Gaussian-type basis sets for local spin density functional calculations. Part I. Boron through neon, optimization technique and validation , 1992 .
[7] A. Rauk,et al. Hydrogen bonding and internal rotation barriers of glycine and its zwitterions (hypothetical) in the gas phase , 1992 .
[8] E. W. McDaniel,et al. Transport Properties of Ions in Gases , 1988 .
[9] A. Shvartsburg,et al. An exact hard-spheres scattering model for the mobilities of polyatomic ions , 1996 .
[10] Ming-Teh Hsu,et al. Carbon cluster cations with up to 84 atoms: structures, formation mechanism, and reactivity , 1993 .
[11] T. Wyttenbach,et al. Salt Bridge Structures in the Absence of Solvent? The Case for the Oligoglycines , 1998 .
[12] Stéphane Bouchonnet,et al. Proton and sodium ion affinities of glycine and its sodium salt in the gas phase. Ab initio calculations , 1992 .
[13] F. Jensen. Structure and stability of complexes of glycine and glycine methyl analogs with H+, Li+, and Na+ , 1992 .
[14] G. T. Fraser,et al. Microwave Spectra, Hyperfine Structure, and Electric Dipole Moments for Conformers I and II of Glycine , 1995 .
[15] W. Oegerle,et al. On the CNDO determination of the molecular conformation and properties of glycine and its zwitterion , 1973 .
[16] Effect of solvation on the acid/base properties of glycine , 1983 .
[17] A. Becke. Density-functional thermochemistry. III. The role of exact exchange , 1993 .
[18] T. Wyttenbach,et al. Effect of the long-range potential on ion mobility measurements , 1997 .
[19] Ronald C. Beavis,et al. Matrix-assisted laser desorption/ionization mass spectrometry of biopolymers. , 1991, Analytical chemistry.
[20] F. Lovas,et al. Millimeter wave spectrum of glycine , 1978 .
[21] Yanbo Ding,et al. The glycine zwitterion does not exist in the gas phase: results from a detailed ab initio electronic structure study , 1992 .
[22] Ming-Teh Hsu,et al. Structures of carbon cluster ions from 3 to 60 atoms: Linears to rings to fullerenes , 1991 .
[23] Mark S. Gordon,et al. General atomic and molecular electronic structure system , 1993, J. Comput. Chem..
[24] Kumiko Tanaka,et al. Main conformer of gaseous glycine: molecular structure and rotational barrier from electron diffraction data and rotational constants , 1991 .
[25] Paul R. Kemper,et al. Electronic-state chromatography: application to first-row transition-metal ions , 1991 .
[26] J. Storey,et al. Microwave spectrum and conformation of glycine , 1978 .
[27] Dake Yu,et al. Radicals and Ions of Glycine: An ab Initio Study of the Structures and Gas-Phase Thermochemistry , 1995 .
[28] George C. Schatz,et al. Mobilities of carbon cluster ions: Critical importance of the molecular attractive potential , 1998 .