The thermal reaction of sulfenates (RS-OR), yielding their corresponding su
lfoxides (RS(=O)R), was studied experimentally. The first step of the react
ion was found to be the formation a radical pair by homolytic cleavage of t
he carbon-oxygen bond of the sulfenate. The two transient radicals formed t
hen recombine to form the carbon-sulfur bond of the sulfoxide. The thermoly
sis of cinnamyl-4-nitrobenzenesulfenate has a positive entropy of activatio
n (Delta S = 6.4 +/- 2.0 eu in toluene), characteristic of a dissociative p
athway, A normal secondary kinetic isotope effect (k(H)/k(D) = 1.19 +/- 0.0
4) was also measured with this substrate, Finally, a trapping experiment al
lowed the isolation and characterization of a product coming from the coupl
ing of the cinnamyl radical and TEMPO, These studies confirm a mechanism th
at was proposed earlier based on computational studies. The experimentally
determined bond dissociation energy of the carbon-oxygen bond of similar to
28 kcal.mol(-1) is in good agreement with the computed value of similar to
26 kcal.mol(-1). These studies confirm a unique structural feature of the
sulfenate moiety, where the weakest bond of the molecule in the ground stat
e is not the heteroatom-heteroatom bond intuitively considered to be the we
akest based on the analogy to peroxides or disulfides. Radical stabilizing
substituents are expected to have a large effect on the thermal reactivity
of sulfenates. Evidence for a competing acid-catalyzed mechanism has also b
een observed.