NAME

苏艳

Paper Publications

Hydrated Sodium Ion Clusters [Na+(H2O)(n) (n=1-6)]: An ab initio Study on Structures and Non-covalent Interaction
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  • Indexed by:

    Journal Papers

  • First Author:

    Wang, Pengju

  • Correspondence Author:

    Shi, RL; Su, Y (reprint author), Dalian Univ Technol, Minist Educ, Key Lab Mat Modificat Laser Ion & Electron Beams, Dalian, Peoples R China.; Shi, RL (reprint author), Hebei Univ Engn, Sch Math & Phys, Handan, Peoples R China.

  • Co-author:

    Shi, Ruili,Su, Yan,Tang, Lingli,Huang, Xiaoming,Zhao, Jijun

  • Date of Publication:

    2019-09-12

  • Journal:

    FRONTIERS IN CHEMISTRY

  • Included Journals:

    SCIE、PubMed

  • Document Type:

    J

  • Volume:

    7

  • Page Number:

    624

  • ISSN No.:

    2296-2646

  • Key Words:

    hydrated sodium cluster; stabilization energy; anharmonic effect; IR spectra; natural bond orbital

  • Abstract:

    Structural, thermodynamic, and vibrational characteristics of water clusters up to six water molecules incorporating a single sodium ion [Na+(H2O)(n) (n = 1-6)] are calculated using a comprehensive genetic algorithm combined with density functional theory on global search, followed by high-level ab initio calculation. For n >= 4, the coordinated water molecules number for the global minimum of clusters is 4 and the outer water molecules connecting with coordinated water molecules by hydrogen bonds. The charge analysis reveals the electron transfer between sodium ions and water molecules, providing an insight into the variations of properties of O-H bonds in clusters. Moreover, the simulated infrared (IR) spectra with anharmonic correction are in good agreement with the experimental results. The O-H stretching vibration frequencies show redshifts comparing with a free water molecule, which is attributed to the non-covalent interactions, including the ion-water interaction, and hydrogen bonds. Our results exhibit the comprehensive geometries, energies, charge, and anharmonic vibrational properties of Na+(H2O)(n) (n = 1-6), and reveal a deeper insight of non-covalent interactions.

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