A CROSS RELATION IN VOLUMES OF ACTIVATION FOR ELECTRON-TRANSFER REACTIONS

Citation
Mr. Grace et al., A CROSS RELATION IN VOLUMES OF ACTIVATION FOR ELECTRON-TRANSFER REACTIONS, Inorganic chemistry, 33(9), 1994, pp. 1915-1920
Citations number
42
Categorie Soggetti
Chemistry Inorganic & Nuclear
Journal title
ISSN journal
00201669
Volume
33
Issue
9
Year of publication
1994
Pages
1915 - 1920
Database
ISI
SICI code
0020-1669(1994)33:9<1915:ACRIVO>2.0.ZU;2-6
Abstract
For the reduction of aqueous Fe(H2O)6(3+) by Co([9]aneS3)2(2+), over a wide range (0.02-0.8 mol kg-1) of ionic strength I, the rate constant k12 varies according to ln(k12/k12(0)) = 2AZ1Z2I1/2/(1 + BaI1/2), whe re A and B are the Debye-Huckel parameters and k12(0) = 369 +/- 7 with a = 798 +/- 10 pm for CF3SO3- media at 25-degrees-C. The pressure dep endence of the electrode potential difference DELTAE gives the volume of reaction DELTAV12(0) = -17.1 +/- 0.4 cm3 mol-1 at I = 0.26 mol kg-1 . The volume of activation DELTAV12double-dagger (-15.9 +/- 0.3 and -1 3.7 +/- 0.4 cm3 mol-1 for 0.1 mol kg-1 CF3SO3- and ClO4-media, respect ively) agrees well with that calculated from a volume cross relation D ELTAV12double-dagger = 1/2(DELTAV11double-dagger + DELTAV22double-dagg er + DELTAV12(0)) + C, derived from the Marcus cross relation for k,2 (J. Phys. Chem. 1968, 72, 891), where DELTAV11double-dagger and DELTAV 22double-dagger are for the Fe(H2O)6(3+/2+) and Co([9]aneS3)2(3+/2+) s elf-exchange reactions and the small contribution C incorporates the p ressure dependence of Marcus' f. For the reduction of aqueous Fe(H2O)6 (3+) by Co(sepulchrate)2+ at 1.8-degrees-C, for which DELTAE is large (1.03 V), k12 is 130-fold slower, and DELTAV12double-dagger (-5.0 cm3 mol-1) is 4-5 cm3 mol-1 more positive, than predicted by the cross rel ations. These results suggest the usefulness of the volume cross relat ion as a mechanistic criterion, at least for reactions with moderate D ELTAE; in particular, they militate against nonadiabaticity as the cau se of the perceived slowness of cross reactions involving the Fe(H2O) 6(3+/2+) couple. Conversely, the volume cross relation affords a means of obtaining experimentally inaccessible volumes of activation for ad iabatic outersphere redox processes in water.