Theoretical estimation of the ionization potential of water in condensed phase. I. Amorphous ice

被引:0
|
作者
Yu. V. Novakovskaya
机构
[1] Moscow State University,Laboratory of Quantum Mechanics and Molecular Structure, Chair of Physical Chemistry, Department of Chemistry
来源
Protection of Metals | 2006年 / 42卷
关键词
31.15.Az; 33.15.Ry; 36.40.Wq;
D O I
暂无
中图分类号
学科分类号
摘要
The possibilities of modern quantum chemical calculations in estimating the physicochemical characteristics of condensed phase specimens, when an increase in the number of particles does not lead to principal changes in the electronic structure, are demonstrated by an example of water, which is the most important solvent in actual corrosion-electrochemical processes. Stationary quantum chemical calculations of (H2O)n water clusters comprising up to 12 molecules and their cations showed that ionization induces the formation of OH and H3O+ fragments. Based on the analysis of the electron density distribution in the systems, a functional dependence of the calculated adiabatic ionization potentials of the clusters on the number of water molecules in them is derived. Extrapolation of this dependence to n → ∞ provides a theoretical estimate of the photoionization threshold of ice.
引用
收藏
页码:542 / 548
页数:6
相关论文
共 50 条
  • [1] Theoretical estimation of the ionization potential of water in condensed phase. I. Amorphous ice
    Novakovskaya, Yu. V.
    PROTECTION OF METALS, 2006, 42 (06): : 542 - 548
  • [2] Theoretical estimation of the ionization potential of water in condensed phase. II. Superficial water layers
    Novakovskaya, Yu. V.
    PROTECTION OF METALS, 2007, 43 (01): : 22 - 33
  • [3] Theoretical estimation of the ionization potential of water in condensed phase. II. Superficial water layers
    Yu. V. Novakovskaya
    Protection of Metals, 2007, 43 : 22 - 33
  • [4] Nonempirical estimation of the ionization conditions of water and amorphous ice
    Novakovskaya, Yu. V.
    Stepanov, N. F.
    RUSSIAN JOURNAL OF PHYSICAL CHEMISTRY A, 2007, 81 (06) : 941 - 948
  • [5] Nonempirical estimation of the ionization conditions of water and amorphous ice
    Yu. V. Novakovskaya
    N. F. Stepanov
    Russian Journal of Physical Chemistry A, 2007, 81 : 941 - 948
  • [6] The low temperature reactive tunneling in condensed phase. I. The rate expression
    Basilevsky, MV
    Davidovitch, GV
    JOURNAL OF CHEMICAL PHYSICS, 2001, 115 (13): : 6072 - 6082
  • [7] Model for supercooled liquid and the transition to another apparently amorphous condensed phase.
    Kivelson, D
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1999, 218 : U299 - U299
  • [8] Some experimental evidence bearing on the discussion of part I. Kinetics of bimolecular associations in the gaseous and condensed phase.
    Wassermann, A
    TRANSACTIONS OF THE FARADAY SOCIETY, 1938, 34 (01): : 0128 - 0137
  • [9] On the iron oxide neutral cluster distribution in the gas phase. I. Detection through 193 nm multiphoton ionization
    Shin, DN
    Matsuda, Y
    Bernstein, ER
    JOURNAL OF CHEMICAL PHYSICS, 2004, 120 (09): : 4150 - 4156
  • [10] Theoretical modeling of ice lithography on amorphous solid water
    Liu, Tao
    Tong, Xujie
    Tian, Shuoqiu
    Xie, Yuying
    Zhu, Mingsai
    Feng, Bo
    Pan, Xiaohang
    Zheng, Rui
    Wu, Shan
    Zhao, Ding
    Chen, Yifang
    Lu, Bingrui
    Qiu, Min
    NANOSCALE, 2022, 14 (25) : 9045 - 9052