Isolation of the latent precursor complex in electron-transfer dynamics. Intermolecular association and self-exchange with acceptor anion radicals

被引:105
作者
Ganesan, V [1 ]
Rosokha, SV [1 ]
Kochi, JK [1 ]
机构
[1] Univ Houston, Dept Chem, Houston, TX 77204 USA
关键词
D O I
10.1021/ja0211611
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Transient [1:1] complexes formed in the bimolecular interactions of electron acceptors (A) with their reduced anion radicals (A(-.)) are detected and characterized in solution for the first time. The recognition of such metastable intermediates as the heretofore elusive precursor complex (A(2)(-.)) in electron-transfer processes for self-exchange allows the principal parameters A (Marcus reorganization energy) and H-DA (electronic coupling element) to be experimentally determined from the optical (charge-transfer) transitions inherent to these intermolecular complexes. The satisfactory correspondence of the theoretically predicted with the experimentally observed rate constants validates these ET parameters and the Marcus-Hush-Sutin methodology for strongly coupled redox systems lying in the (Robin-Day) Class 11 category. Most importantly, the marked intermolecular electronic interaction (H-DA) within these precursor complexes must be explicitly recognized, since it dramatically affects the electron-transfer dynamics by effectively lowering the activation barrier. As such, the numerous calculations of the reorganization energy previously obtained from various self-exchange kinetics based on lambda = 4DeltaG* must be reconsidered in the light of such a precursor complex, with the important result that ET rates can be substantially faster than otherwise predicted. On the basis of these studies, a new mechanistic criterion is proposed for various outer-sphere/inner-sphere ET processes based on the relative magnitudes of H-DA and lambda.
引用
收藏
页码:2559 / 2571
页数:13
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共 115 条
[21]   CALCULATION OF ELECTRON-TRANSFER RATE CONSTANTS FROM THE PROPERTIES OF CHARGE-TRANSFER ABSORPTION-BANDS - THE PQ2+,FE(CN)64-SYSTEM [J].
CURTIS, JC ;
SULLIVAN, BP ;
MEYER, TJ .
INORGANIC CHEMISTRY, 1980, 19 (12) :3833-3839
[22]   The localized-to-delocalized transition in mixed-valence chemistry [J].
Demadis, KD ;
Hartshorn, CM ;
Meyer, TJ .
CHEMICAL REVIEWS, 2001, 101 (09) :2655-2685
[24]  
Drago R.S., 1977, Physical Methods in Chemistry
[25]   ELECTRON-TRANSFER REACTIONS OF RADICAL-ANIONS - DO THEY FOLLOW OUTER-SPHERE OR INNER-SPHERE MECHANISMS [J].
EBERSON, L ;
SHAIK, SS .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1990, 112 (11) :4484-4489
[26]  
Eberson L., 1987, ELECT TRANSFER REACT
[27]   Direct experimental comparison of the theories of thermal and optical electron-transfer: Studies of a mixed-valence dinuclear iron polypyridyl complex [J].
Elliott, CM ;
Derr, DL ;
Matyushov, DV ;
Newton, MD .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1998, 120 (45) :11714-11726
[28]  
Formosinho SJ, 1998, PROG REACT KINET MEC, V23, P1
[29]  
Foster R., 1969, ORGANIC CHARGE TRANS
[30]   Charge-transfer salts with three different stoichiometries for the bimetallic molybdenum complex CpMo(SMe)(4)MoCp with TCNQ and TCNQF(4): structural and magnetic properties [J].
Fourmigue, M ;
Perrocheau, V ;
Clerac, R ;
Coulon, C .
JOURNAL OF MATERIALS CHEMISTRY, 1997, 7 (11) :2235-2241