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Ab initio study of hydrated potassium halides KX(H2O)(1-6) (X=F,Cl,Br,I) SCIE SCOPUS

Title
Ab initio study of hydrated potassium halides KX(H2O)(1-6) (X=F,Cl,Br,I)
Authors
Olleta, ACLee, HMKim, KS
Date Issued
2007-04-14
Publisher
AMER INST PHYSICS
Abstract
The ionic dissociation of salts was examined with a theoretical study of KX (X=F,Cl,Br,I) hydrated by up to six water molecules KX(H2O)(n) (n=1-6). Calculations were done using the density functional theory and second order Moller-Plesset (MP2) perturbational theory. To provide more conclusive results, single point energy calculations using the coupled cluster theory with single, double, and perturbative triple excitations were performed on the MP2 optimized geometries. The dissociation feature of the salts was examined in terms of K-X bond lengths and K-X stretch frequencies. In general, the successive incorporation of water molecules to the cluster lengthens the K-X distance, and consequently the corresponding frequency decreases. Near 0 K, the KX salt ion pairs can be partly separated by more than five water molecules. The pentahydrated KX salt is partly dissociated, though these partly dissociated structures are almost isoenergetic to the undissociated ones for KF/KCl. For the hexahydrated complexes, KF is undissociated, KCl/KBr is partly dissociated, and KI is dissociated (though this dissociated structure is nearly isoenergetic to a partly dissociated one). On the other hand, at room temperature, the penta- and hexahydrated undissociated structures which have less hydrogen bonds are likely to be more stable than the partly dissociated ones because of the entropy effect. Therefore, the dissociation at room temperature could take place for higher clusters than the hexahydrated ones. (c) 2007 American Institute of Physics.
URI
https://oasis.postech.ac.kr/handle/2014.oak/10814
DOI
10.1063/1.2715565
ISSN
0021-9606
Article Type
Article
Citation
JOURNAL OF CHEMICAL PHYSICS, vol. 126, no. 14, 2007-04-14
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