Electronic excitation transfer in chains modulated by conformational dynamic disorder

被引:5
作者
Palszegi, T [1 ]
Kauffmann, HF [1 ]
机构
[1] SLOVAK ACAD SCI,INST POLYMER,BRATISLAVA 84236,SLOVAKIA
关键词
D O I
10.1063/1.472036
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
Electronic excitations along sites that undergo spatial and temporal fluctuations due to conformational chain motion have been studied in the picture of the stochastic master equation by means of the dynamic Monte Carlo (DMC) and the cumulant expansion (CE) approach. An incoherent site-to-site hopping which is adiabatic relative to the changes of conformational site coordinates has been assumed. The elementary act of conformational change has been considered to be fast, whereas the electronic transfer during the time period of the conformational event has been assumed to be negligibly small. The time evolution of electronic intersite coupling is thus controlled by chromophore sites that, in particular, correspond to the conformational minima of the potential energy landscape. The generalized equations of motion adapted for both the DMC and the CE analysis have been reduced to formulate donor site excitation probabilities [P-i(exc)(t)] and donor excitation survival functions [P-D(t)] for a simplified chain. In this polymer model, (i) specific nearest-neighbor electronic coupling occurs with two distinct transfer rates W-1 and W-2 corresponding to Mo different spatial arrangements of the pendant sites in the pair and (ii) transitions between two definite conformational states occur both in the correlated and in the uncorrelated regime. For short chains and a moderate number of sites in the rotational dyads the whole range from the dynamic to the static limit in the interplay between excitation transfer and correlated conformational motion has been calculated by the DMC method. By means of the cumulant technique well-behaved solutions could be, obtained only in the fast conformational transition regime which allows a direct comparison with the DMC results. For longer chains up to 100 sites, in the Limit case of uncorrelated conformational motion, preliminary cumulant approaches have been given which, for very rapid conformational rates, agree well with the dynamic effective medium approximation (DEMA) solutions. (C) 1996 American Institute of Physics.
引用
收藏
页码:1702 / 1717
页数:16
相关论文
共 45 条
[21]   BROWNIAN DYNAMICS STUDY OF TRANSITIONS IN A POLYMER-CHAIN OF BISTABLE OSCILLATORS [J].
HELFAND, E .
JOURNAL OF CHEMICAL PHYSICS, 1978, 69 (03) :1010-1018
[22]   ELECTRONIC-ENERGY TRANSPORT IN AROMATIC VINYL-POLYMERS - NONEXPONENTIAL PICOSECOND TRAPPING IN POLY-(N-VINYLCARBAZOLE) [J].
KAUFFMANN, HF ;
MOLLAY, B ;
WEIXELBAUMER, WD ;
BURBAUMER, J ;
RIEGLER, M ;
MEISTERHOFER, E ;
AUSSENEGG, FR .
JOURNAL OF CHEMICAL PHYSICS, 1986, 85 (06) :3566-3584
[23]  
KAUFFMANN HF, 1990, PHOTOCHEMISTRY PHOTO, V2
[24]   EFFECT OF MOLECULAR-REORIENTATION ON EXCITATION DECAY DUE TO INCOHERENT ENERGY-TRANSFER [J].
KNOESTER, J ;
VANHIMBERGEN, JE .
JOURNAL OF CHEMICAL PHYSICS, 1984, 81 (10) :4380-4388
[25]   NON-MARKOVIAN STOCHASTIC JUMP-PROCESSES .1. INPUT FIELD ANALYSIS [J].
KOFMAN, AG ;
ZAIBEL, R ;
LEVINE, AM ;
PRIOR, Y .
PHYSICAL REVIEW A, 1990, 41 (11) :6434-6453
[26]   SOLUTIONS OF MASTER EQUATIONS AND RELATED RANDOM-WALKS ON QUENCHED LINEAR CHAINS [J].
LAKATOSL.K ;
PEARLSTEIN, RM ;
HEMENGER, RP .
JOURNAL OF CHEMICAL PHYSICS, 1972, 56 (10) :4852-+
[27]   CONFIGURATIONAL RELAXATION AND DIFFUSION OF A FLEXIBLE POLYMER IN A DYNAMICALLY DISORDERED MEDIUM [J].
LORING, RF .
JOURNAL OF CHEMICAL PHYSICS, 1991, 94 (02) :1505-1515
[28]   DISTRIBUTED ELECTRONIC RELAXATION AND NONEXPONENTIAL FLUORESCENCE IN POLYMERS - REVERSIBILITY IN DONOR-EXCIMER PAIRS - A PERTURBATION-THEORY TREATMENT [J].
MOLLAY, B ;
LANDL, G ;
KAUFFMANN, HF .
JOURNAL OF CHEMICAL PHYSICS, 1989, 91 (06) :3744-3761
[29]   THE COUPLING BETWEEN LIBRATIONAL MOTIONS AND CONFORMATIONAL TRANSITIONS IN CHAIN MOLECULES - A PHENOMENOLOGICAL ANALYSIS [J].
MORO, GJ .
JOURNAL OF CHEMICAL PHYSICS, 1991, 94 (12) :8577-8591
[30]  
MORO GJ, 1991, J CHEM PHYS, V94, P8677