D. Dakternieks et al., STANNANES AS FREE-RADICAL REDUCING AGENTS - AN AB-INITIO STUDY OF HYDROGEN-ATOM TRANSFER FROM SOME TRIALKYLTIN HYDRIDES TO ALKYL RADICALS, Perkin transactions. 2, (9), 1997, pp. 1665-1669
Ab initio molecular orbital calculations using a (valence) double-xi p
seudopotential (DZP) basis set, with (MP2, QCISD) and without (SCF) th
e inclusion of electron correlation, predict that hydrogen atoms, meth
yl, ethyl, isopropyl and tert-butyl radicals abstract hydrogen atoms f
rom stannane and trimethyltin hydride via transition states in which t
he attacking and leaving radicals adopt a colinear arrangement. Transi
tion states in which (overall) Sn-C separations of 3.50 Angstrom have
been calculated; these distances appear to be independent of the natur
e of the attacking radical and alkyl substitution at tin. At the highe
st level of theory (QCISD/DZP//MP2/DZP), energy barriers (Delta E-1(+)) of 18-34 kJ mol(-1) are predicted for the forward reactions, while
the reverse reactions (Delta E-2(++)) are calculated to require 140-17
0 kJ mol(-1). These values are marginally affected by the inclusion of
zero-point vibrational energy correction. Importantly, QCISD and MP2
calculations predict correctly the relative order of radical:reactivit
y toward reduction by stannanes: tert-butyl> isopropyl> ethyl, By comp
arison, SCF/DZP, AM1 and AM1(CI = 2) calculations perform somewhat mor
e poorly in their prediction of relative radical reactivity.