| Literature DB >> 11465443 |
M Hytha1, I Stich, J D Gale, K Terakura, M C Payne.
Abstract
We present a theoretical study of the formation of the first intermediate, dimethyl ether, in the methanol to gasoline conversion within the framework of an ab initio molecular dynamics approach. The study is performed under conditions that closely resemble the reaction conditions in the zeolite catalyst including the full topology of the framework. The use of the method of thermodynamic integration allows us to extract the free-energy profile along the reaction coordinate. We find that the entropic contribution qualitatively alters the free-energy profile relative to the total energy profile. Different transition states are found from the internal and free energy profiles. The entropy contribution varies significantly along the reaction coordinate and is responsible for stabilizing the products and for lowering the energy barrier. The hugely inhomogeneous variation of the entropy can be understood in terms of elementary processes that take place during the chemical reaction. Our simulations provide new insights into the complex nature of this chemical reaction.Entities:
Year: 2001 PMID: 11465443 DOI: 10.1002/1521-3765(20010618)7:12<2521::aid-chem25210>3.0.co;2-n
Source DB: PubMed Journal: Chemistry ISSN: 0947-6539 Impact factor: 5.236