首页> 外文OA文献 >Dramatic Pressure-Dependent Quenching Effects in Supercritical CO2 Assessed by the Fluorescence of 4‘-Dimethylamino-3-hydroxyflavone. Thermodynamic versus Kinetics Control of Excited-State Intramolecular Proton Transfer
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Dramatic Pressure-Dependent Quenching Effects in Supercritical CO2 Assessed by the Fluorescence of 4‘-Dimethylamino-3-hydroxyflavone. Thermodynamic versus Kinetics Control of Excited-State Intramolecular Proton Transfer

机译:通过4'-Dimethylamino-3-hydroxyflavone的荧光评估,在超临界CO2中具有显着的压力依赖性猝灭效果。激发态分子内质子转移的热力学与动力学控制

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摘要

Steady-state fluorescence of 4‘-dimethylamino-3-hydroxyflavone (DMA3HF) was observed in supercritical carbon dioxide (scCO2). Excited-state intramolecular proton transfer (ESIPT) occurs resulting in two well-separated emission bands corresponding to the normal and tautomer forms. As the scCO2 density exceeds 0.7 g/mL, the relative intensity of the two bands tends to a constant value, comparable to that observed for organic solvents with ET(30) = 33.0 ± 0.5 kcal/mol, such as toluene and di-n-butyl ether. At lower densities, the substantial decrease of the total fluorescence intensity (a 600-fold decrease as the pressure decreases from 100 to 80 bar) is accompanied by an even more accentuated decrease of the tautomer fluorescence. This can be explained by a shift in the equilibrium between normal and tautomer forms, concomitant with a more efficient quenching of the less solvated fluorophore, that may change the thermodynamic control of the relative population of the two emissive species to a kinetic control.
机译:在超临界二氧化碳(scCO2)中观察到4'-二甲基氨基-3-羟基黄酮(DMA3HF)的稳态荧光。发生激发态分子内质子转移(ESIPT),导致两个发射带完全分离,分别对应于正常和互变异构体形式。当scCO2密度超过0.7 g / mL时,这两个谱带的相对强度趋向于一个恒定值,与在ET(30)= 33.0±0.5 kcal / mol的有机溶剂(例如甲苯和di-n)中观察到的相当丁基醚。在较低的密度下,总荧光强度的显着降低(压力从100 bar降至80 bar降低600倍)伴随着互变异构体荧光的进一步降低。这可以通过正常和互变异构体形式之间的平衡变化来解释,同时对较少溶剂化的荧光团进行更有效的淬灭,这可能会将两种发射物种的相对种群的热力学控制变为动力学控制。

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