Optical transitions of symmetrical mixed-valence systems in the Class II-III transition regime

被引:770
作者
Brunschwig, BS [1 ]
Creutz, C [1 ]
Sutin, N [1 ]
机构
[1] Brookhaven Natl Lab, Dept Chem, Upton, NY 11973 USA
关键词
D O I
10.1039/b008034i
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In the Robin and Day classification, mixed-valence systems are characterized as Class I, II or III depending on the strength of the electronic interaction between the oxidized and reduced sites, ranging from essentially zero (Class I), to moderate (Class II). to very strong electronic coupling (Class III). The properties of Class I systems are essentially those of the separate sites. Class II systems possess new optical and electronic properties in addition to those of the separate sites. However, the interaction between the sites is sufficiently weak that Class II systems are valence trapped or charge localized and can the be described by a double-well potential. In Class III systems the interaction of the donor and acceptor sites is so great that two separate minima are no longer discernible and the energy surface features a single minimum. The electron is delocalized and the system has its own unique properties. The Robin and Day classification has enjoyed considerable success and most of the redox systems studied to date are readily assigned to Class II. However the situation becomes much more complicated when the system shows borderline Class II/III behavior. Such "almost delocalized" mixed-valence systems are difficult to characterize. In this article spectral band shapes and intensities are calculated utilizing increasingly complex models including two to four states. Free-energy surfaces are constructed for harmonic diabatic surfaces and characterized as a function of increasing electronic coupling to simulate the Class II to III transition. The properties of the charge-transfer absorption bands predicted for borderline mixed-valence systems are compared with experimental data. The treatment is restricted to symmetrical (DeltaG(0)=0) systems.
引用
收藏
页码:168 / 184
页数:17
相关论文
共 38 条
[1]  
ATKINS PW, 1997, MOL QUANTUM MECH, P509
[2]   Advances in the coordination chemistry of [M(CN)5L]n- ions (M = Fe, Ru, Os) [J].
Baraldo, LM ;
Forlano, P ;
Parise, AR ;
Slep, LD ;
Olabe, JA .
COORDINATION CHEMISTRY REVIEWS, 2001, 219 :881-921
[3]   THE NEAR-INFRARED AND MID-INFRARED SPECTRUM OF THE CREUTZ-TAUBE ION IN AQUEOUS-SOLUTION - AN APPLICATION OF FTIR SPECTROELECTROCHEMICAL TECHNIQUES [J].
BEST, SP ;
CLARK, RJH ;
MCQUEEN, RCS ;
JOSS, S .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1989, 111 (02) :548-550
[4]   Energy surfaces, reorganization energies, and coupling elements in electron transfer [J].
Brunschwig, BS ;
Sutin, N .
COORDINATION CHEMISTRY REVIEWS, 1999, 187 :233-254
[5]  
Brunschwig BS, 2001, ELECT TRANSFER CHEM, V2, P583
[6]   Generalization of the Mulliken-Hush treatment for the calculation of electron transfer matrix elements [J].
Cave, RJ ;
Newton, MD .
CHEMICAL PHYSICS LETTERS, 1996, 249 (1-2) :15-19
[7]   Medium effects on charge transfer in metal complexes [J].
Chen, PY ;
Meyer, TJ .
CHEMICAL REVIEWS, 1998, 98 (04) :1439-1477
[8]   MIXED-VALENCE COMPLEXES OF D5-D6 METAL CENTERS [J].
CREUTZ, C .
PROGRESS IN INORGANIC CHEMISTRY, 1983, 30 :1-73
[9]   METAL-LIGAND AND METAL-METAL COUPLING ELEMENTS [J].
CREUTZ, C ;
NEWTON, MD ;
SUTIN, N .
JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY A-CHEMISTRY, 1994, 82 (1-3) :47-59