Lattice energies for metallic salts calculated by density functional theory were listed in Table V along with literature data values. Unfortunately, an inappropriate comparison was made with results obtained by using the equation of Glasser and Jenkins published in J. Amer. Chem. Soc., 2000, 122, 63
Density functional theory studies on the dissociation energies of metallic salts: relationship between lattice and dissociation energies
โ Scribed by Chang Kon Kim; Jongok Won; Hoon Sik Kim; Yong Soo Kang; Hong Guang Li; Chan Kyung Kim
- Publisher
- John Wiley and Sons
- Year
- 2001
- Tongue
- English
- Weight
- 189 KB
- Volume
- 22
- Category
- Article
- ISSN
- 0192-8651
- DOI
- 10.1002/jcc.1048
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โฆ Synopsis
Abstract
The formation and physicochemical properties of polymer electrolytes strongly depend on the lattice energy of metal salts. An indirect but efficient way to estimate the lattice energy through the relationship between the heterolytic bond dissociation and lattice energies is proposed in this work. The heterolytic bond dissociation energies for alkali metal compounds were calculated theoretically using the Density Functional Theory (DFT) of B3LYP level with 6โ311+G(d,p) and 6โ311+G(2df,p) basis sets. For transition metal compounds, the same method was employed except for using the effective core potential (ECP) of LANL2DZ and SDD on transition metals for 6โ311+G(d,p) and 6โ311+G(2df,p) calculations, respectively. The dissociation energies calculated by 6โ311+G(2df,p) basis set combined with SDD basis set were better correlated with the experimental values with average error of ca. ยฑ1.0% than those by 6โ311+G* combined with the LANL2DZ basis set. The relationship between dissociation and lattice energies was found to be fairly linear (r>0.98). Thus, this method can be used to estimate the lattice energy of an unknown ionic compound with reasonably high accuracy. We also found that the dissociation energies of transition metal salts were relatively larger than those of alkaline metal salts for comparable ionic radii. ยฉ 2001 John Wiley & Sons, Inc. J Comput Chem 22: 827โ834, 2001
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