Mukherjee Tushar Kanti, Panda Debashis, Datta Anindya
Department of Chemistry, Indian Institute of Technology Bombay, Powai, Mumbai 400 076, India.
J Phys Chem B. 2005 Oct 13;109(40):18895-901. doi: 10.1021/jp052917w.
Excited-state proton transfer (ESPT) of 2-(2'-pyridyl)benzimidazole (2PBI) in reverse micelles has been studied by steady-state and time-resolved fluorescence spectroscopy. The nanometer sized water pool in the n-heptane/Aerosol OT (AOT)/water microemulsion is found to promote tautomer emission of this probe, as is evident from the emergence of a Stokes shifted band at 450 nm at the expense of the normal emission band on increasing the water content of the system. In the nonaquous microemulsion with a methanol core, the normal emission is quenched but no tautomer emission is obtained. With an acetonitrile core, there is no change in emission properties. Similarly, there is no evidence of ESPT in Triton X-100 reverse micelles. This indicates the requirement of ESPT to occur in microheterogeneous media; the medium should be a ternary system comprised of water and a hydrophobic phase separated by a negatively charged interface. In the microemulsions with an aqueous core, the fluorescence decays of 2PBI at the red end exhibit rise times of 0.8 ns and the time-resolved area-normalized emission spectra (TRANES) exhibit an isoemissive point, indicating slow dynamics of the two-state ESPT of 2PBI in aqueous AOT reverse micelles. The origin of the selective enhancement in AOT microemulsions as well as the slow dynamics is explored using fluorescence spectroscopic techniques, with support from quantum chemical calculation.
通过稳态和时间分辨荧光光谱研究了2-(2'-吡啶基)苯并咪唑(2PBI)在反胶束中的激发态质子转移(ESPT)。在正庚烷/气溶胶OT(AOT)/水微乳液中,纳米尺寸的水池被发现促进了该探针的互变异构体发射,这从随着体系含水量增加,在450 nm处出现一个斯托克斯位移带,同时正常发射带减弱可以明显看出。在以甲醇为核的非水微乳液中,正常发射被猝灭,但未获得互变异构体发射。以乙腈为核时,发射性质没有变化。同样,在Triton X-100反胶束中也没有ESPT的证据。这表明ESPT需要在微非均相介质中发生;该介质应该是由水和被带负电界面分隔的疏水相组成的三元体系。在以水为核的微乳液中,2PBI在红色端的荧光衰减显示出0.8 ns的上升时间,时间分辨面积归一化发射光谱(TRANES)显示出一个等发射点,表明2PBI在水相AOT反胶束中的双态ESPT动力学缓慢。利用荧光光谱技术,并在量子化学计算的支持下,探索了AOT微乳液中选择性增强以及缓慢动力学的起源。