2-Naphthol Complexation by β-Cyclodextrin:  Influence of Added Short Linear Alcohols

Jan van Stam, Steven De Feyter, Frans C. De Schryver, Christopher H. Evans
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引用次数: 52

Abstract

2-Naphthol (NOH) in its ground state forms a 1:1 complex with β-cyclodextrin (β-CD) both in the absence and presence of linear alcohols. Association constants, Kapp, were measured using a steady-state fluorescence method. Kapp decreases linearly with an increasing number of carbon atoms in the chain of the alcohol, nC, up to nC = 5. We attribute this to a competition between NOH and alcohol for the β-CD cavity. Fluorescence studies confirm the redistribution of NOH from the CD environment to the aqueous phase when alcohols are present. NOH fluorescence is quenched by iodide in all the systems studied. At 2 mM β-CD, alcohols increase the Stern?Volmer constant above the value found in the absence of alcohols. These results suggest that alcohols occupy space within the β-CD cavity with the result that the aqueous NOH concentration is increased. This was further investigated by dynamic fluorescence measurements on the system β-CD:NOH:pentanol. Global biexponential analysis of fluorescence decay data shows that the Stern?Volmer constants correlate inversely with the fraction of NOH complexed by β-CD. By global compartmental analysis of the fluorescence decays, values for the excited-state association and dissociation rate constants were determined. The dissociation rate constant increases from approximately 500 s-1 in the absence of pentanol to about 14?000 s-1 at a pentanol concentration of 0.1 M. The association rate constant increases from 2.5 × 109 to 5.8 × 109 M-1 s-1 upon addition of pentanol. The more pronounced increase of the dissociation rate constant leads to an exclusion of complexed NOH into the aqueous bulk phase. As the complexed NOH is shielded against iodide quenching, this explains the increase of the Stern?Volmer constant when an alcohol is added to the aqueous β-CD:NOH system.

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β-环糊精络合2-萘酚:添加短链醇的影响
2-萘酚(NOH)在基态下与β-环糊精(β-CD)形成1:1的配合物,无论是否存在线性醇。用稳态荧光法测量缔合常数Kapp。随着醇链中碳原子数的增加,直到nC = 5, Kapp线性减小。我们将此归因于NOH和醇之间对β-CD空腔的竞争。荧光研究证实,当醇存在时,NOH从CD环境重新分配到水相。在所研究的所有体系中,NOH荧光都被碘化物猝灭。在2 mM β-CD下,醇增加斯特恩?沃尔默常数高于不含醇时的值。这些结果表明,醇类在β-CD腔内占据空间,导致水溶液NOH浓度升高。通过对β-CD:NOH:戊醇体系的动态荧光测量进一步研究了这一点。荧光衰减数据的全局双指数分析表明,Stern?沃尔默常数与NOH与β-CD络合的比例成反比。通过对荧光衰减的全局区室分析,确定了激发态缔合和解离速率常数的值。解离速率常数从无戊醇时的500 s-1左右增加到14?当戊醇浓度为0.1 m时,缔合速率常数由2.5 × 109增加到5.8 × 109 M-1 s-1。解离速率常数的显著增加导致络合的NOH被排除在水体相之外。由于络合的NOH被屏蔽以防止碘化物猝灭,这解释了Stern?在β-CD:NOH水溶液中加入醇时的沃尔默常数。
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