Carmona Carmen, Balón Manuel, Galán Manuel, Guardado Pilar, Muñoz María A
Departamento de Química Física, Facultad de Farmacia, Universidad de Sevilla, Spain.
Photochem Photobiol. 2002 Sep;76(3):239-46. doi: 10.1562/0031-8655(2002)076<0239:dsoesh>2.0.co;2.
Photoinduced proton transfer reactions of harmane or 1-methyl-9H-pyrido[3,4-b]indole (HN) in the presence of the proton donor hexafluoroisopropanol (HFIP) in cyclohexane-toluene mixtures (CY-TL; 10% vol/vol of TL) have been studied. Three excited state species have been identified: a 1:2 hydrogen-bonded proton transfer complex (PTC), between the pyridinic nitrogen of the substrate and the proton donor, a hydrogen-bonded cation-like exciplex (CL*) with a stoichiometry of at least 1:3 and a zwitterionic exciplex (Z*). Time-resolved fluorescence measurements evidence that upon excitation of ground state PTC, an excited state equilibrium is established between PTC* and the cationlike exciplex, CL*, lambdaem approximately/= 390 nm. This excited state reaction is assisted by another proton donor molecule. Further reaction of CL* with an additional HFIP molecule produces the zwitterionic species, Z*, lambda(em) approximately/= 500 nm. From the analysis of the multiexponential decays, measured at different emission wavelengths and as a function of HFIP concentration, the mechanism of these excited state reactions has been established. Thus, three rate constants and three reciprocal lifetimes have been determined. The simultaneous study of 1,9-dimethyl-9H-pyrido[3,4-b]indole (MHN) under the same experimental conditions has helped to understand the excited state kinetics of these processes.
已对哈尔满或1-甲基-9H-吡啶并[3,4-b]吲哚(HN)在质子供体六氟异丙醇(HFIP)存在下于环己烷-甲苯混合物(CY-TL;TL体积分数为10%)中的光致质子转移反应进行了研究。已鉴定出三种激发态物种:底物的吡啶氮与质子供体之间形成的1:2氢键质子转移络合物(PTC)、化学计量比至少为1:3的氢键阳离子型激基复合物(CL*)和两性离子激基复合物(Z*)。时间分辨荧光测量表明,基态PTC受激发后,在PTC和阳离子型激基复合物CL之间建立了激发态平衡,发射波长λem≈390 nm。该激发态反应由另一个质子供体分子协助。CL与另一个HFIP分子的进一步反应产生两性离子物种Z,发射波长λ(em)≈500 nm。通过对在不同发射波长下以及作为HFIP浓度函数测量的多指数衰减进行分析,确定了这些激发态反应的机理。因此,确定了三个速率常数和三个倒数寿命。在相同实验条件下对1,9-二甲基-9H-吡啶并[3,4-b]吲哚(MHN)的同时研究有助于理解这些过程的激发态动力学。