Theoretical study of the effects of protonation and deprotonation on bond dissociation energies of second-row elements: Comparison with first-row elements

被引:23
作者
Boyd, SL [1 ]
Boyd, RJ [1 ]
机构
[1] DALHOUSIE UNIV,DEPT CHEM,HALIFAX,NS B3H 4J3,CANADA
关键词
D O I
10.1021/ja9619770
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Ab initio MO calculations indicate that protonation of XHn to XHn+1+ increases bond dissociation energies (BDEs) far homolytic cleavage or CX bonds in CH3XHn, CH3-CH2-XHn, CH2=CH-XHn, and CH=C-XHn compounds (X = N, O, F, P, S, and Cl). Deprotonation of XHn to XHn-1- (X = C, N, O, Si, P, and S) in saturated species generally results in small decreases in CX BDEs; in unsaturated substances, as a result of resonance, deprotonation yields large increases in the CX BDEs, X = Si being the exception. For adjacent CC bonds, protonation of XHn increases the CC BDEs because it produces larger electronegativity differences between bonded groups; deprotonation decreases the BDEs as a result of resonance effects. Two types of correlation between bond lengths and homolytic BDEs are observed, with second-row elements exhibiting bond length changes to a much lesser extent than first-row ones. Firstly, bond lengths of adjacent CC bonds increase as their BDEs decrease, Secondly, and apparently anomalously, CX bond lengths and homolytic BDEs both increase with protonation of XHn, except with X = P. The increase in BDE together with the increase in bond length is, in part, a result of the focus on homolytic BDEs: heterolytic cleavage of most protonated, and many deprotonated, species is actually preferred, in which case bond lengths generally increase as bond strengths decrease in accordance with the normally accepted trend.
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页码:4214 / 4219
页数:6
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