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Electronic and Vibrational Properties of Fluorenone in the Channels of Zeolite L

机译:沸石L通道中芴酮的电子和振动性质

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Fluorenone (C_(13)H_8O)was inserted into the channels of zeolite L by using gas-phase adsorption.The size,structure,and stability of fluorenone are well suited for studying host-guest interactions.The Fourier transform IR,Raman,luminescence,and excitation spectra,in addition to thermal analysis data,of fluorenone in solution and fluo-renone/zeolite L are reported.Normal coordinate analysis of fluorenone was performed,based on which IR and Raman bands were assigned,and an experimental force field was determined.The vibrational spectra can be used for nondestructive quantitative analysis by comparing a characteristic dye band with a zeolite band that has been chosen as the internal standard.Molecular orbital calculations were performed to gain a better understanding of the electronic structure of the system and to support the interpretation of the electronic absorption and luminescence spectra.Fluorenone shows unusual luminescence behavior in that it emits from two states.The relative intensity of these two bands depends strongly on the environment and changes unexpectedly in response to temperature.In fluorenone/zeo-lite L,the intensity of the 300 nm band (lifetime 9 us)increases with decreasing temperature,while the opposite is true for the 400 nm band (lifetime 115 us).A model of the host-guest interaction is derived from the experimental results and calculations:the dye molecule sits close to the channel walls with the carbonyl group pointing to an Al~(3+)site of the zeolite framework.A secondary interaction was observed between the fluorenone's aromatic ring and the zeolite's charge-compensating cations.
机译:气相吸附法将芴酮(C_(13)H_8O)插入到沸石L的通道中。芴酮的大小,结构和稳定性非常适合研究主体与客体的相互作用。傅立叶变换红外光谱,拉曼光谱,发光光谱报道了溶液中的芴酮和氟-肾上腺素/沸石L的激发光谱以及热分析数据。对芴酮进行了正态坐标分析,并分配了IR和拉曼谱带,并建立了实验力场。通过比较特征染料带和被选作内标的沸石带,可将振动光谱用于无损定量分析。进行分子轨道计算以更好地了解系统的电子结构和支持电子吸收和发光光谱的解释。氟尿酮显示出不寻常的发光行为,因为它从两种状态发射。这两个谱带的强度在很大程度上取决于环境,并且会随温度而意外地变化。在芴酮/沸石L中,300 nm谱带的强度(寿命9 us)随温度的降低而增加,而相反400 nm波段(寿命115 us)。从实验结果和计算得出宿主-客体相互作用的模型:染料分子靠近通道壁,羰基指向Al〜(3+)的Al〜(3+)位点在芴酮的芳环和沸石的电荷补偿阳离子之间观察到次级相互作用。

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