AB-INITIO MOLECULAR-ORBITAL STUDY OF THE O+C6H5O REACTION

被引:29
作者
LIN, MC
MEBEL, AM
机构
[1] Department of Chemistry, Emory University, Atlanta, Georgia
关键词
D O I
10.1002/poc.610080605
中图分类号
O62 [有机化学];
学科分类号
070303 ; 081704 ;
摘要
An ab initio molecular orbital study of the potential energy surface of the C6H5O + O reaction was performed at the PUMP3/6-31G(*)//UHF/6-31G(*) + ZPE(UHF/6-31G(*)) level of theory. Various reaction channels were considered. The most favorable mechanisms, Ia and Ib, start from the attachment of the oxygen atom to the carbon atom of the C-6 ring in the ortho- or para position with respect to CO, taking place without activation energy. Then, either hydrogen elimination by mechanism Ia or 1,2-H shift from the C(H)(O) group takes place; the latter process leads to the formation of the very stable C6H4(O)(OH) radical, which can also eliminate H by mechanism Ib. Thus, the main products of the C6H5O (B-2(1)) + O(P-3) reaction are o/p-benzoquinones and the hydrogen atom. At low temperatures, however, the system may be trapped in the potential well of the C6H4(O)(OH) intermediate. At high temperatures, the reaction may proceed by the formation and decomposition of o/p-benzoquinones. Because of their higher activation energies, the reaction mechanisms giving rise to other products - the attachment of the oxygen atom to the bridging position to form an epoxy intermediate, followed by insertion of O into the CC bond and dissociation to give C5H5 and CO2 (channel IIc), in addition to the attachment of oxygen to the terminal O atom of C6H5O followed by elimination of O-2 (channel III)-cannot compete with channel Ia or Ib. RRKM calculation was carried out for the total and individual rate constants for channels Ia and Ib. The three-parameter expression for the total rate constant, fitted by the least-squares method for the temperature range of 300-3000 K, is given as k(tot) = 5 . 52 x 10(-17) T-1 . 38 e(+148/T) cm(3) mol(-1) s(-l).
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页码:407 / 420
页数:14
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