Samenvatting
Quantum chemical calculations on the mechanism of ethane dehydrogenation catalyzed by Ga-exchanged zeolites have been undertaken. Two forms of gallium, adsorbed dihydridegallium ion GaH(2)(+)Z(-) and adsorbed gallyl ion [Ga=O](+)Z(-), were considered. It was found that GaH(2)(+)Z(-) is the likely active catalyst. On the contrary, [Ga=O](+)Z(-) cannot be a working catalyst in nonoxidative conditions, because regeneration of this form is very difficult. Activation of ethane by GaH(2)(+)Z(-) occurs via an "alkyl" mechanism and the gallium atom acts as an acceptor of the ethyl group. The "carbenium" activation of ethane, with gallium abstracting a hydride ion, is much (ca. 51 kcal/mol) more difficult. The catalytic cycle for the "alkyl" activation consists of three elementary steps: (i) rupture of the ethane C-H bond; (ii) formation of dihydrogen from the Bronsted proton and hydrogen bound to Ga; (iii) formation of ethene from the ethyl group bound to Ga. The best estimates (MP2/6-311++G(2df.p)//B3LYP/6- 31G*) for the activation energies of these three steps are 36.9, ca. 0, and 57.9 kcal/mol, respectively
| Originele taal-2 | Engels |
|---|---|
| Pagina's (van-tot) | 2468-2475 |
| Aantal pagina's | 8 |
| Tijdschrift | Journal of Physical Chemistry A |
| Volume | 104 |
| Nummer van het tijdschrift | 11 |
| DOI's | |
| Status | Gepubliceerd - 2000 |
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