SURVEY OF LIGAND EFFECTS UPON THE REACTION ENTROPIES OF SOME TRANSITION-METAL REDOX COUPLES

被引:412
作者
YEE, EL [1 ]
CAVE, RJ [1 ]
GUYER, KL [1 ]
TYMA, PD [1 ]
WEAVER, MJ [1 ]
机构
[1] MICHIGAN STATE UNIV,DEPT CHEM,E LANSING,MI 48824
关键词
D O I
10.1021/ja00499a013
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The reaction entropies ΔS°rc of a number of transition metal redox couples of the form M(III)/(II) in aqueous solution have been determined using nonisothermal electrochemical cells in order to explore the effect of varying the ligand structure upon the nature of the ion-solvent interactions. Examination of six aquo couples of the form M(OH2)n3+/2+ with varying metal M yielded ΔS°rc values in the range 36-49 eu. In order to scrutinize the effect of replacing aquo with ammine and simple anionic ligands, Ru(III)/(II) couples were employed since the relative substitution inertness of both oxidation states allowed ΔS°rc to be determined using cyclic voltammetry. The stepwise replacement of aquo by ammine ligands results in substantial reductions in ΔScrc which are attributed to the smaller extent of ligand-solvent hydrogen bonding for ammine compared with aquo ligands. Substitution of both aquo and ammine by anionic ligands also results in substantial reductions in ΔS°rc. A number of M(III)/(II) couples containing chelating ligands were also examined. Sizable differences in ΔS°rc were found between Co(III)/(II) couples and the corresponding Ru(III)/(II) and Fe(III)/(II) couples. Suggested explanations are differences in ligand conformation and electron derealization effects. The possible contribution of outer-sphere solvent structuring effects to the large reorganization energies observed for electron exchange of aquo complexes is noted. The validity of the assumptions required for the estimation of ΔS°rc from nonisothermal cell measurements is discussed. © 1979, American Chemical Society. All rights reserved.
引用
收藏
页码:1131 / 1137
页数:7
相关论文
共 62 条
[1]   KINETICS OF OXIDATION OF EUROPIUM(2) WITH VANADIUM(3) AND CHROMIUM(3) IN AQUEOUS PERCHLORIC ACID SOLUTIONS [J].
ADIN, A ;
SYKES, AG .
JOURNAL OF THE CHEMICAL SOCIETY A -INORGANIC PHYSICAL THEORETICAL, 1966, (09) :1230-&
[2]  
Agar J.N., 1963, ADVANCES ELECTROCHEM, V2, P31
[3]  
BASOLO F, 1967, MECHANISMS INORGANIC, P62
[4]  
BENNETT LE, 1973, PROGR INORG CHEM, V18, P1
[5]   ELECTROREDUCTION OF YB(III)-YB(II) COUPLE IN COMPARISON WITH EU(III)-EU(II) [J].
BORKOWSKA, Z ;
ELZANOWSKA, H .
JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 1977, 76 (03) :287-299
[6]   CONVENIENT SYNTHESIS OF HEXAAMMINEOSMIUM(III) [J].
BOTTOMLEY, F ;
TONG, SB .
INORGANIC CHEMISTRY, 1974, 13 (01) :243-244
[7]   POTENTIAL OF RUTHENIUM(2)-RUTHENIUM(3) COUPLE [J].
BUCKLEY, RR ;
MERCER, EE .
JOURNAL OF PHYSICAL CHEMISTRY, 1966, 70 (10) :3103-&
[8]   RATE CONSTANTS AND ACTIVATION PARAMETERS FOR OUTER-SPHERE ELECTRON-TRANSFER REACTIONS AND COMPARISONS WITH PREDICTIONS OF MARCUS THEORY [J].
CHOU, M ;
CREUTZ, C ;
SUTIN, N .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1977, 99 (17) :5615-5623
[9]   EMPIRICAL CONSIDERATIONS OF ENTROPY .2. THE ENTROPIES OF INORGANIC COMPLEX IONS [J].
COBBLE, JW .
JOURNAL OF CHEMICAL PHYSICS, 1953, 21 (09) :1446-1450
[10]   RATES OF ACID-HYDROLYSIS AND STABILITIES OF RUTHENIUM (II) PENTAAMMINE CHLORIDE AND BROMIDE COMPLEX IONS [J].
COLEMAN, GN ;
GESLER, JW ;
SHIRLEY, FA ;
KUEMPEL, JR .
INORGANIC CHEMISTRY, 1973, 12 (05) :1036-1038