ARRHENIUS PARAMETERS FOR THE ADDITION OF PHENOLS TO THE SILICON-SILICON DOUBLE-BOND OF TETRAMESITYLDISILENE

Citation
Y. Apeloig et M. Nakash, ARRHENIUS PARAMETERS FOR THE ADDITION OF PHENOLS TO THE SILICON-SILICON DOUBLE-BOND OF TETRAMESITYLDISILENE, Organometallics, 17(11), 1998, pp. 2307-2312
Citations number
23
Categorie Soggetti
Chemistry Inorganic & Nuclear","Chemistry Inorganic & Nuclear
Journal title
ISSN journal
02767333
Volume
17
Issue
11
Year of publication
1998
Pages
2307 - 2312
Database
ISI
SICI code
0276-7333(1998)17:11<2307:APFTAO>2.0.ZU;2-6
Abstract
We have measured, for the first time for a disilene, the Arrhenius act ivation energies (E-a) and preexponential factors (In A) for an additi on reaction. The addition reactions of both p-CH3OC6H4OH and P-F3CC6H4 OH to tetramesityldisilene (1) have positive Arrhenius activation ener gies of 13.7 and 9.7 kcal/mol, respectively, and highly negative entro pies of activation of -34.9 and -45.3 eu, respectively (In A = 13.0 an d 7.8 M-1 s(-1), respectively). The more negative Delta S double dagge r value for p-F3CC6H4OH is consistent with a more ordered type of addi tion in this case. The rates of addition of phenols to 1 (k approximat e to 10(-4)-10(-2) M-1 s(-1)) are dramatically slower, i.e., by a fact or of ca. 10(9)-10(12), compared with the rates of addition of alkyl a lcohols to the less hindered (E)- and (Z)-1,2-dimethyl-1,2-diphenyldis ilenes (3E and 3Z) and 1,2,2-trimethyl-1-phenyldisilene (4) (k approxi mate to 10(7)-10(8) M-1 s(-1)).(5) Steric protection of the Si=Si bond in 1 by the bulky mesityl substituents is probably responsible for th is large reactivity difference. Competition experiments support this c onclusion; EtOH reacts with 3E only 1.5 times faster than i-PrOH and 1 9 times faster than t-BuOH (similar competition ratios were measured f or 3Z and 4),(5) while with 1 EtOH reacts 11 times faster than i-PrOH and at least 4000 times faster than t-BuOH. Ab initio quantum mechanic al calculations (at MP3/6-31G/HF6-31G*) for the addition of CH3OH and of CF3OH to Me2Si=SiMe2 reveal the following: for CH3OH,the rate-dete rmining step is the nucleophilic attack of the alcohol on the disilene and the reaction proceeds via a zwitterionic alcohol-disilene interme diate; for CF3OH, the rate-determining step is concerted and the alcoh ol is involved both as a nucleophile and as an electrohile, with proto n transfer being well advanced in the transition state.