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B3LYP calculations ethylene oxide

Calculations at the B3LYP/6-31+G(d) level of theory have shown that the 5 2 ringopening reaction of ethylene oxide by ammonia is catalysed by BF3 but not by BH3. ° A novel reaction eliminating H2, rather than the ring-opening reaction, occurs when BH3 is used as the catalyst. [Pg.314]

In summary, transition structures with dioxirane and dimethyldioxirane are unsymmet-rical at the MP2/6-31G level, but are symmetrical at the QCISD/6-31G and B3LYP/6-31G levels. The transition states for oxidation of ethylene by carbonyl oxides do not suffer from the same difficulties as those for dioxirane and peroxyforaiic acid. Even at the MP2/6-31G level, they are symmetrical (Figure 17). The barriers at the MP2 and MP4 levels are similar and solvent has relatively little effect. The calculated barriers agree well with experiment . In a similar fashion, the oxidation of ethylene by peroxyformic acid has been studied at the MP2/6-31G, MP4/6-31G, QCISD/6-31G and CCSD(T)/6-31G and B3LYP levels of theory. The MP2/6-31G level of theory calculations lead to an unsymmetrical transition structure for peracid epoxidation that, as noted above, is an artifact of the method. However, QCISD/6-31G and B3LYP/6-31G calculations both result in symmetrical transition structures with essentially equal C—O bonds. [Pg.37]


See other pages where B3LYP calculations ethylene oxide is mentioned: [Pg.699]    [Pg.189]    [Pg.189]    [Pg.242]    [Pg.4]    [Pg.189]    [Pg.189]    [Pg.89]    [Pg.331]    [Pg.108]    [Pg.697]    [Pg.14]    [Pg.32]    [Pg.56]    [Pg.14]    [Pg.32]    [Pg.56]    [Pg.114]    [Pg.135]    [Pg.91]    [Pg.199]    [Pg.696]   
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