Eigen and Zundel forms of small protonated water clusters: Structures and infrared spectra

被引:137
作者
Park, Mina [1 ]
Shin, Ilgyou [1 ]
Singh, N. Jiten [1 ]
Kim, Kwang S. [1 ]
机构
[1] Pohang Univ Sci & Technol, Dept Chem, Ctr Superfunct Mat, Pohang, South Korea
关键词
D O I
10.1021/jp073912x
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The spectral properties of protonated water clusters, especially the difference between Eigen (H3O+) and Zundel (H5O2+) conformers and the difference between their unhydrated and dominant hydrated forms are investigated with the first principles molecular dynamics simulations as well as with the high level ab initio calculations. The vibrational modes of the excess proton in H3O+ are sensitive to the hydration, while those in H5O2+ are sensitive to the messenger atom such as Ar (which was assumed to be weakly bound to the water cluster during acquisitions of experimental spectra). The spectral feature around similar to 2700 cm(-1) (experimental value: 2665 cm(-1))for the Eigen moiety appears when H3O+ is hydrated. This feature corresponds to the hydrating water interacting with H3O+, SO it cannot appear in the Eigen core. Thus, H3O+ alone would be somewhat different from the Eigen forms in water. For the Zundel form (in particular, H5O2+), there have been some differences in spectral features among different experiments as well as between experiments and theory. When an At messenger atom is introduced at a specific temperature corresponding to the experimental condition, the calculated vibrational spectra for H5O2+center dot Ar are in good agreement with the experimental infrared spectra showing the characteristic Zundel frequency at similar to 1770 cm(-1). Thus, the effect of hydration, messenger atom Ar, and temperature are crucial to elucidating the nature of vibrational spectra of Eigen and Zundel forms and to assigning the vibrational modes of small protonated water clusters.
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页码:10692 / 10702
页数:11
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