Modulating charge separation and charge recombination dynamics in porphyrin fullerene linked dyads and triads: Marcus-normal versus inverted region

Citation
H. Imahori et al., Modulating charge separation and charge recombination dynamics in porphyrin fullerene linked dyads and triads: Marcus-normal versus inverted region, J AM CHEM S, 123(11), 2001, pp. 2607-2617
Citations number
133
Categorie Soggetti
Chemistry & Analysis",Chemistry
Journal title
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
ISSN journal
00027863 → ACNP
Volume
123
Issue
11
Year of publication
2001
Pages
2607 - 2617
Database
ISI
SICI code
0002-7863(20010321)123:11<2607:MCSACR>2.0.ZU;2-H
Abstract
Photoinduced charge separation (CS) and charge recombination (CR) processes have been examined in various porphyrin-fullerene linked systems (i.e., dy ads and triads) by means of time-resolved transient absorption spectroscopy and fluorescence lifetime measurements. The investigated compounds compris e a homologous series of rigidly linked linear donor-acceptor arrays with d ifferent donor-acceptor separations and diversified donor strength: freebas e porphyrin-C-60 dyad (H2P-C-60) zincporphyrin-C-60 dyad (ZnP-C-60), ferroc ene-zincporphyrin-C-60 triad (Fc-ZnP-C-60), ferrocene-freebase porphyrin-C- 60 triad (Fc-H2P-C-60), and zincporphyrin-freebase porphyrin-C-60 triad (Zn P-H2P-C-60). Most importantly, the lowest lying charge-separated state of a ll the investigated systems; namely, that of ferrocenium ion (Fc(+)) and th e C-60 radical anion (C60(.-)) pair in the Fc-ZnP-C-60 triad; has been gene rated with the highest quantum yields (close to unity) and reveals a lifeti me as long as 16 mus. Determination of CS and CR rate constants, together w ith the one-electron different solvents, has allowed us to examine the driv ing redox potentials of the donor and acceptor moieties in force dependence (-DeltaG(ET)(0)) of the electron-transfer rate constants (k(ET)): Hereby, the semilogarithmic plots (i.e., log k(ET) versus -DeltaG(ET)(0)) lead to t he evaluation of the reorganization energy (lambda) and the electronic coup ling matrix element (V) in light of the Marcus theory of electron-transfer reactions: lambda = 0.66 eV and V = 3.9 (-1) for ZnP-C-60 dyad and lambda = 1.09 eV and V = 0.019 cm(-1) for Fc-ZnP-C-60, Fc-H2P-C-60, and ZnP-H2P-C-6 0 triads. Interestingly, the Marcus plot in Fc-ZnP-C-60, FC-H2P-C-60, and Z nP-H2P-C-60 has provided clear evidence for intramolecular CR located in bo th the normal and inverted regions of the Marcus parabola. The coefficient for the distance dependence of V (damping factor: beta (CR) = 0.58 Angstrom (-1)) is deduced which depends primarily on the nature of the bridging mol ecule.