Mechanism of photosensitized generation of singlet oxygen during oxygen quenching of triplet states and the general dependence of the rate constants and efficiencies of O2(1Σg+), O2(1Δg), and O2(3Σg-) formation on sensitizer triplet state energy and oxidation potential

被引:69
作者
Schweitzer, C [1 ]
Mehrdad, Z [1 ]
Noll, A [1 ]
Grabner, EW [1 ]
Schmidt, R [1 ]
机构
[1] Goethe Univ Frankfurt, Inst Phys & Theoret Chem, D-60439 Frankfurt, Germany
关键词
D O I
10.1021/jp026189d
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Rate constants of photosensitized generation of O-2((1)Sigma(g)(+)), O-2((1)Delta(g)), and O2((3)Sigma(g)(-)) have been determined for a series of pipi* triplet sensitizers with strongly varying oxidation potential (E-ox), triplet energy (E-T), and molecular structure, in CCl4. We demonstrate that one common dependence on E-ox and E-T successfully describes these rate constants for the molecules studied here and also for all previously investigated pipi* sensitizers, independently of molecular structure or any other parameter. Photosensitized singlet oxygen generation during O-2 quenching of pipi* triplet states can be generally described by a mechanism involving the successive formation of excited noncharge transfer (nCT) encounter complexes and partial charge transfer (pCT) exciplexes of singlet and triplet multiplicity (1,3)(T(1)(3)Sigma), following interaction of O-2((3)Sigma(g)(-)) with the triplet excited sensitizer. Both (1,3)(T(1)(3)Sigma) nCT and pCT complexes decay by internal conversion (ic) to yield O-2((3)Sigma(g)(-)), O-2((1)Delta(g)), and O-2((3)Sigma(g)(-)) and the sensitizer ground state. is is the rate-limiting step in the nCT channel, whereas exciplex formation is rate determining in the pCT channel. Rotation of the 02 molecule within the solvent cage of (1,3)(T(1)(3)Sigma) nCT complexes is fast enough to allow for a completely established intersystem crossing (isc) equilibrium, whereas significant noncovalent binding interactions slow rotation and inhibit isc between (1)(T(1)(3)Sigma) and (3)(T(1)(3)Sigma) pCT complexes. Upon the basis of this mechanism, we propose a semiempirical relationship that can be generally used to estimate rate constants and efficiencies of photosensitized singlet oxygen generation during O-2 quenching of pipi* triplet states in CCl4. The data set includes 127 rate constants for derivatives of naphthalene, biphenyl, fluorene, several ketones, fullerenes, porphyrins and metalloporphyrins, and other homocyclic and heterocyclic aromatics of variable molecular structure and size. It is suggested that the general relationship presented here can be used for the optimization of the singlet oxygen photosensitization ability of many molecules, including those used in biological and medical applications, such as the photodynamic therapy of cancer.
引用
收藏
页码:2192 / 2198
页数:7
相关论文
共 66 条
[1]   Charge transfer effects on the efficiency of singlet oxygen production following oxygen quenching of excited singlet and triplet states of aromatic hydrocarbons in acetonitrile [J].
Abdel-Shafi, AA ;
Wilkinson, F .
JOURNAL OF PHYSICAL CHEMISTRY A, 2000, 104 (24) :5747-5757
[2]   Electronic to vibrational energy conversion and charge transfer contributions during quenching by molecular oxygen of electronically excited triplet states [J].
Abdel-Shafi, AA ;
Wilkinson, F .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2002, 4 (02) :248-254
[3]   Singlet oxygen formation efficiencies following quenching of excited singlet and triplet states of aromatic hydrocarbons by molecular oxygen [J].
Abdel-Shafi, AA ;
Worrall, DR ;
Wilkinson, F .
JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY A-CHEMISTRY, 2001, 142 (2-3) :133-143
[4]   CAS MCSCF/CAS MCQDPT2 study of the mechanism of singlet oxygen addition to 1,3-butadiene and benzene [J].
Bobrowski, M ;
Liwo, A ;
Oldziej, S ;
Jeziorek, D ;
Ossowski, T .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2000, 122 (34) :8112-8119
[5]   TRIPLET-STATE ENERGY-DEPENDENCE OF THE COMPETITIVE FORMATION OF O2(1-SIGMA-G+), O2(1-DELTA-G) AND O2(3-SIGMA-G-) IN THE SENSITIZATION OF O2 BY TRIPLET-STATES [J].
BODESHEIM, M ;
SCHUTZ, M ;
SCHMIDT, R .
CHEMICAL PHYSICS LETTERS, 1994, 221 (1-2) :7-14
[6]   CHARGE-TRANSFER MECHANISM FOR QUENCHING OF THE LOWEST 3N,PI-STAR STATE OF VAPOR-PHASE CARBONYL-CONTAINING COMPOUNDS BY O2 [J].
CEBUL, FA ;
KIRK, KA ;
LUPO, DW ;
PITTENGER, LM ;
SCHUH, MD ;
WILLIAMS, IR ;
WINSTON, GC .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1980, 102 (17) :5656-5661
[7]  
Dairou J, 2002, PHOTOCHEM PHOTOBIOL, V75, P229, DOI 10.1562/0031-8655(2002)075<0229:SAODDA>2.0.CO
[8]  
2
[9]   Charge transfer interactions in the generation of singlet oxygen O2(1Δg) by strong electron donors [J].
Darmanyan, AP ;
Lee, W ;
Jenks, WS .
JOURNAL OF PHYSICAL CHEMISTRY A, 1999, 103 (15) :2705-2711
[10]   ENERGY-TRANSFER FROM LUMINESCENT TRANSITION-METAL COMPLEXES TO OXYGEN [J].
DEMAS, JN ;
HARRIS, EW ;
MCBRIDE, RP .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1977, 99 (11) :3547-3551