Potential energy surfaces for water dynamics: Reaction coordinates, transition states, and normal mode analyses

Hideki Tanaka, Iwao Ohmine

研究成果査読

67 被引用数 (Scopus)

抄録

Dynamics of water binding structure reorganization is investigated by analyzing the potential energy surfaces involved. The water structures in a trajectory are quenched to their local minima, called the inherent structures. The reaction coordinates, which connect the inherent structures successively visited by the system, are determined. It is found that the energy barrier heights, the transition state energies, along the reaction coordinates are mostly distributed in the range of 0.2-6 kcal/mol. The classification of inherent structures is made to groups of "overall-inherent structures"; successive inherent structures are most often not so geometrically distinct. It is found that transitions between the overall-inherent structures, involving large collective motions, occur in the subpicosecond time scale. Individual molecular motions in these collective motions are stongly correlated, not yielding large transition energies. The transition state energy sometimes reaches up to 20 kcal/mol, when the system goes through the ridge between deep minima, yielding ballistic dynamical behavior. Temperature dependence of the collective motions is also investigated.

本文言語English
ページ(範囲)6318-6327
ページ数10
ジャーナルThe Journal of Chemical Physics
91
10
DOI
出版ステータスPublished - 1月 1 1989
外部発表はい

ASJC Scopus subject areas

  • 物理学および天文学(全般)
  • 物理化学および理論化学

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