Femtosecond fluorescence upconversion studies of barrierless bond twisting of auramine in solution

被引:107
作者
van der Meer, MJ [1 ]
Zhang, H [1 ]
Glasbeek, M [1 ]
机构
[1] Univ Amsterdam, Phys Chem Lab, NL-1018 WS Amsterdam, Netherlands
关键词
D O I
10.1063/1.480929
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
Femtosecond fluorescence upconversion studies have been performed for auramine (a diphenylmethane dye), dissolved in ethanol, as a function of temperature. It is found that the (sub)picosecond decay components in the fluorescence slow down as the temperature is lowered from 293 K to 173 K. From the observation of a residual fluorescence, with a viscosity-dependent lifetime of about 30 ps (or longer at higher viscosity), and transient absorption results it is concluded that the two-state sink function model [B. Bagchi, G. R. Fleming, and D. W. Oxtoby, J. Chem. Phys. 78, 7375 (1983)] does not apply in the case of auramine. Comparison of the auramine fluorescence kinetics in ethanol and decanol shows that diffusional twisting and not solvation is the main cause for the (sub)picosecond excited state relaxation. To explain the experimental results, adiabatic coupling between a locally excited emissive state (F) and a nonemissive excited state (D) is considered. Torsional diffusion motions of the phenyl groups in the auramine molecule are held responsible for the population relaxation along the adiabatic potential of the mixed state, S-1 (comprised of the F and D states). Simulation of the excited state dynamics is feasible assuming a barrierless-shaped potential energy for S-1 and applying the Smoluchowski diffusion equation. The temporal behavior of the auramine band emission was simulated for the temperature range 293 K > T > 173 K, with the temperature, T, and the viscosity coefficient, eta, being the only variable parameters. The simulated temporal behavior of the emission in the investigated temperature range is compatible with that obtained experimentally. The rotational diffusion coefficient for the auramine phenyl groups as extracted from the simulations is found to follow the Einstein-Stokes relation. From the numerical calculations the effective radius of the twisting phenyl groups is determined as 1.0 Angstrom which compares well with the actual value of 1.2 Angstrom. (C) 2000 American Institute of Physics. [S0021-9606(00)51706-1].
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页码:2878 / 2887
页数:10
相关论文
共 62 条
[41]   DETERMINATION OF THE CRITICAL MICELLE CONCENTRATIONS AND MICROVISCOSITY WITH A FLUORESCENCE PROBE, AURAMINE [J].
MIYAGISHI, S ;
KURIMOTO, H ;
ISHIHARA, Y ;
ASAKAWA, T .
BULLETIN OF THE CHEMICAL SOCIETY OF JAPAN, 1994, 67 (09) :2398-2402
[42]   ULTRAFAST CONFORMATION EQUILIBRATION IN TRIPHENYL METHANE DYES ANALYZED BY TIME RESOLVED INDUCED PHOTOABSORPTION [J].
MOKHTARI, A ;
FINI, L ;
CHESNOY, J .
JOURNAL OF CHEMICAL PHYSICS, 1987, 87 (06) :3429-3435
[43]   FLUORESCENCE AND INTERNAL ROTATION - THEIR DEPENDENCE ON VISCOSITY OF THE MEDIUM [J].
OSTER, G ;
NISHIJIMA, Y .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1956, 78 (08) :1581-1584
[44]   ULTRAFAST INTERNAL CHARGE-TRANSFER IN A DONOR-MODIFIED RHODAMINE [J].
PLAZA, P ;
HUNG, ND ;
MARTIN, MM ;
MEYER, YH ;
VOGEL, M ;
RETTIG, W .
CHEMICAL PHYSICS, 1992, 168 (2-3) :365-373
[45]   PHOTOPHYSICAL AND PHOTOCHEMICAL SWITCHES BASED ON TWISTED INTRAMOLECULAR CHARGE-TRANSFER (TICT) STATES [J].
RETTIG, W .
APPLIED PHYSICS B-PHOTOPHYSICS AND LASER CHEMISTRY, 1988, 45 (03) :145-149
[46]   THE INTERACTION OF AURAMINE-O WITH CALMODULIN - LOCATION OF THE BINDING-SITE ON THE CONNECTING STRAND [J].
STEINER, RF ;
ALBAUGH, S ;
NENORTAS, E ;
NORRIS, L .
BIOPOLYMERS, 1992, 32 (01) :73-83
[47]   EFFECTS OF SOLVENT ON TMP PHOTOPHYSICS - TRANSITION FROM NO BARRIER TO BARRIER CASE, INDUCED BY SOLVENT PROPERTIES [J].
SUNDSTROM, V ;
GILLBRO, T .
JOURNAL OF CHEMICAL PHYSICS, 1984, 81 (08) :3463-3474
[48]   PICOSECOND KINETICS OF RADIATIONLESS RELAXATIONS OF TRIPHENYL METHANE DYES - EVIDENCE FOR A RAPID EXCITED-STATE EQUILIBRIUM BETWEEN STATES OF DIFFERING GEOMETRY [J].
SUNDSTROM, V ;
GILLBRO, T ;
BERGSTROM, H .
CHEMICAL PHYSICS, 1982, 73 (03) :439-458
[49]   REACTION-RATES IN THE PHENOMENOLOGICAL ADIABATIC EXCITED-STATE ELECTRON-TRANSFER THEORY [J].
TOMINAGA, K ;
WALKER, GC ;
KANG, TJ ;
BARBARA, PF ;
FONSECA, T .
JOURNAL OF PHYSICAL CHEMISTRY, 1991, 95 (25) :10485-10492
[50]   ULTRAFAST CHARGE SEPARATION IN ADMA - EXPERIMENT, SIMULATION, AND THEORETICAL ISSUES [J].
TOMINAGA, K ;
WALKER, GC ;
JARZEBA, W ;
BARBARA, PF .
JOURNAL OF PHYSICAL CHEMISTRY, 1991, 95 (25) :10475-10485