Literature DB >> 21086970

Density functional steric analysis of linear and branched alkanes.

Daniel H Ess1, Shubin Liu, Frank De Proft.   

Abstract

Branched alkane hydrocarbons are thermodynamically more stable than straight-chain linear alkanes. This thermodynamic stability is also manifest in alkane bond separation energies. To understand the physical differences between branched and linear alkanes, we have utilized a novel density functional theory (DFT) definition of steric energy based on the Weizäcker kinetic energy. Using the M06-2X functional, the total DFT energy was partitioned into a steric energy term (E(s)[ρ]), an electrostatic energy term (E(e)[ρ]), and a fermionic quantum energy term (E(q)[ρ]). This analysis revealed that branched alkanes have less (destabilizing) DFT steric energy than linear alkanes. The lower steric energy of branched alkanes is mitigated by an equal and opposite quantum energy term that contains the Pauli component of the kinetic energy and exchange-correlation energy. Because the steric and quantum energy terms cancel, this leaves the electrostatic energy term that favors alkane branching. Electrostatic effects, combined with correlation energy, explains why branched alkanes are more stable than linear alkanes.

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Year:  2010        PMID: 21086970     DOI: 10.1021/jp108577g

Source DB:  PubMed          Journal:  J Phys Chem A        ISSN: 1089-5639            Impact factor:   2.781


  5 in total

1.  Evaluating frontier orbital energy and HOMO/LUMO gap with descriptors from density functional reactivity theory.

Authors:  Ying Huang; Chunying Rong; Ruiqin Zhang; Shubin Liu
Journal:  J Mol Model       Date:  2016-12-08       Impact factor: 1.810

2.  SCI: a robust and reliable density-based descriptor to determine multiple covalent bond orders.

Authors:  Ying Huang; Lianghong Liu; Chunying Rong; Tian Lu; Paul W Ayers; Shubin Liu
Journal:  J Mol Model       Date:  2018-07-21       Impact factor: 1.810

3.  High-temperature thermal decomposition of iso-octane based on reactive molecular dynamics simulations.

Authors:  Yulei Guan; Yanyan Gao; Junpeng Lou; Xingzhen Zhu; Dandan Pan; Haixia Ma
Journal:  J Mol Model       Date:  2022-04-22       Impact factor: 1.810

4.  Revisiting the trapping of noble gases (He-Kr) by the triatomic H3+ and Li3+ species: a density functional reactivity theory study.

Authors:  Xin He; Chunna Guo; Meng Li; Shujing Zhong; Xinjie Wan; Chunying Rong; Pratim K Chattaraj; Dongbo Zhao
Journal:  J Mol Model       Date:  2022-04-19       Impact factor: 1.810

5.  Molecular Interactions From the Density Functional Theory for Chemical Reactivity: The Interaction Energy Between Two-Reagents.

Authors:  Ramón Alain Miranda-Quintana; Farnaz Heidar-Zadeh; Stijn Fias; Allison E A Chapman; Shubin Liu; Christophe Morell; Tatiana Gómez; Carlos Cárdenas; Paul W Ayers
Journal:  Front Chem       Date:  2022-06-13       Impact factor: 5.545

  5 in total

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