## Abstract Fiftyβone structures have been calculated by the MINDO/3 method to evaluate the errors introduced by branching and by the presence of the heteroatom. The structures are evaluated by comparisons which reveal that the calculated Ξ__H__~__f__~ values reflect a bias because of the presence
Evaluation of MINDO/3 calculated structures. II. Branching errors in alkanes and cycloalkanes
β Scribed by Samuel P. McManus; Maurice R. Smith; Margaret B. Smith; Steven G. Shafer
- Publisher
- John Wiley and Sons
- Year
- 1980
- Tongue
- English
- Weight
- 463 KB
- Volume
- 1
- Category
- Article
- ISSN
- 0192-8651
No coin nor oath required. For personal study only.
β¦ Synopsis
Abstract
MINDO/3 calculations have been carried out for a series of branched chain alkanes in order to assess effects of branching on calculated geometries and heats of formation (Ξ__H__~f~). With vicinal branching, MINDO/3 calculates the central Cο£ΏC bond to be too long. Bond angles are also found to be distorted. Errors in calculated heats of formation are large when geminal branching is present and significant with vicinal branching. Branching error corrections for Ξ__H__~f~ have been derived and applied to a separate series of branched acyclic and cyclic compounds. For the test sample, application of the branching error corrections gave calculated structures of acyclic branched hydrocarbons with heats of formation having an average absolute error of 1.3 kcal/mole rather than 17.3 kcal/mole before correction. Cyclic branched hydrocarbons are shown to be less well corrected. Calculations of heats of reaction have also been carried out for some isomerization and cyclization reactions using the MINDO/3 and MNDO methods. It is clear from the comparisons that MNDO calculations give less severe errors for highly branched compounds but the errors are still substantial. For prediction of heats of reaction, the errorβcorrected calculations are shown to be superior to the βrawβ calculations obtained by MINDO/3 or MNDO.
π SIMILAR VOLUMES
## Abstract The performance of the MINDO/3 method has been evaluated in simple heteroatomic molecules that are representative of several important biological systems. Molecular geometries are accurate to within 0.04 Γ for bond lengths, and 3Β° for most bond angles. Dipole moments and charge distribu