GAS-PHASE NITRONIUM ION AFFINITIES

被引:27
|
作者
CACACE, F [1 ]
DEPETRIS, G [1 ]
PEPI, F [1 ]
ANGELELLI, F [1 ]
机构
[1] UNIV TUSCIA,DIPARTIMENTO SCI AMBIENTALI,I-01100 VITERBO,ITALY
关键词
D O I
10.1073/pnas.92.19.8635
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Evaluation of nitronium ion-transfer equilibria, L(1)NO(2)(+) + L(2) = L(2)NO(2)(+) + L(1) (where L(1) and L(2) are ligands 1 and 2, respectively) by Fourier-transform ion cyclotron resonance mass spectrometry and application of the kinetic method, based on the metastable fragmentation of L(1)(NO2+)L(2) nitronium ion-bound dimers led to a scale of relative gas-phase nitronium ion affinities. This scale, calibrated to a recent literature value for the NO2+ affinity of water, led for 18 ligands, including methanol, ammonia, representative ketones, nitriles, and nitroalkanes, to absolute NO2+ affinities, that fit a reasonably linear general correlation when plotted vs. the corresponding proton affinities (PAs). The slope of the plot depends to a certain extent on the specific nature of the ligands and, hence, the correlations between the NO2+ affinities, and the PAs of a given class of compounds display a better linearity than the general correlation and may afford a useful tool for predicting the NO2+ affinity of a molecule based on its PA. The NO2+ binding energies are considerably lower than the corresponding PAs and well below the binding energies of related polyatomic cations, such as NO+, a trend consistent with the available theoretical results on the structure and the stability of simple NO2+ complexes. The present study reports an example of extension of the kinetic method to dimers, such as L(1)(NO2+)L(2), bound by polyatomic ions, which may considerably widen its scope. Finally, measurement of the NO2+ affinity of ammonia allowed evaluation of the otherwise inaccessible PA of the amino group of nitramide and, hence, direct experimental verification of previous theoretical estimates.
引用
收藏
页码:8635 / 8639
页数:5
相关论文
共 50 条
  • [31] MECHANISMS FOR ION FORMATION IN GAS-PHASE
    GIUSTISUZOR, A
    JOURNAL DE CHIMIE PHYSIQUE ET DE PHYSICO-CHIMIE BIOLOGIQUE, 1993, 90 (06) : 1219 - 1237
  • [32] The Basics of Gas-Phase Ion Chemistry
    Turecek, Frantisek
    CHEMICKE LISTY, 2020, 114 (02): : 89 - 95
  • [33] GAS-PHASE CHEMISTRY OF THE SILAFORMAMIDE ION
    HANKIN, JA
    KREMPP, M
    DAMRAUER, R
    ORGANOMETALLICS, 1995, 14 (06) : 2652 - 2663
  • [34] GAS-PHASE ORGANOMETALLIC ION CHEMISTRY
    BEAUCHAMP, JL
    ACS SYMPOSIUM SERIES, 1987, 333 : 11 - 42
  • [35] Gas-phase ion chemistries in perfluoromethylcyclohexane
    Jiao, C. Q.
    DeJoseph, C. A., Jr.
    Garscadden, A.
    Adams, S. F.
    PLASMA SOURCES SCIENCE & TECHNOLOGY, 2009, 18 (02):
  • [36] Gas-phase ion dynamics and chemistry
    Armentrout, PB
    Baer, T
    JOURNAL OF PHYSICAL CHEMISTRY, 1996, 100 (31): : 12866 - 12877
  • [37] Gas-phase californium ion chemistry
    Gibson, JK
    Haire, RG
    INTERNATIONAL JOURNAL OF MASS SPECTROMETRY, 2000, 203 (1-3) : 127 - 142
  • [38] REACTIONS OF PHENOXIDE ION IN THE GAS-PHASE
    BINKLEY, RW
    TEVESZ, MJS
    WINNIK, W
    JOURNAL OF ORGANIC CHEMISTRY, 1992, 57 (20): : 5507 - 5509
  • [39] Gas-phase ion chemistry and ion thermochemistry of phenyltrifluorosilane
    Krouse, IH
    Lardin, HA
    Wenthold, PG
    INTERNATIONAL JOURNAL OF MASS SPECTROMETRY, 2003, 227 (03) : 303 - 314
  • [40] PROTON AND SODIUM-ION AFFINITIES OF GLYCINE AND ITS SODIUM-SALT IN THE GAS-PHASE - ABINITIO CALCULATIONS
    BOUCHONNET, S
    HOPPILLIARD, Y
    ORGANIC MASS SPECTROMETRY, 1992, 27 (02): : 71 - 76