FT-Raman studies of single-component and binary adsorption in silicalite-1

Sunil Ashtekar, J. J. Hastings, L. Gladden
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引用次数: 23

Abstract

FT-Raman spectroscopy has been used to probe single-component and binary-component adsorption of benzene, p-xylene and cyclohexane in silicalite-1. It was shown that FT-Raman is not only able to probe the sorbate–framework interaction related to the phase transitions commonly observed when organic species are sorbed within silicalite-1, but also provides a sensitive and direct probe of sorbate–sorbate interactions within the zeolite framework. Single-component adsorption of benzene, p-xylene and cyclohexane in silicalite-1 has been considered at various loadings. In the case of benzene adsorption, FT-Raman spectroscopy was shown to detect the transformation in sorbate interactions associated with the transformation in crystal symmetry from monoclinic P21/n.1.1 to orthorhombic Pnma at a sorbate loading of 4 molecules per unit cell. We also confirmed the results of Huang (J. Am. Chem. Soc., 1996, 118, 7233) in detecting the sorbate-induced crystal-phase transition from orthorhombic Pnma to orthorhombic P212121 for the case of p-xylene adsorption at loadings in excess of 4 molecules per unit cell. No evidence of a crystal-phase transition as a function of sorbate loading was observed for the case of cyclohexane adsorption, consistent with earlier studies. It was shown that, in the case of benzene–p-xylene co-adsorption, benzene and p-xylene access the sites most favoured during the respective single-component adsorption processes. In contrast, cyclohexane when co-adsorbed with either benzene or p-xylene was seen to compete for the same sites, forcing benzene and p-xylene into less favoured adsorption sites.
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硅石中单组分和二元吸附的FT-Raman研究
利用傅里叶变换拉曼光谱研究了硅石-1对苯、对二甲苯和环己烷的单组分和双组分吸附。结果表明,FT-Raman不仅能够探测与有机物质在硅石-1中吸附时常见的相变相关的山梨酸盐-山梨酸盐相互作用,而且还提供了在沸石框架内山梨酸盐-山梨酸盐相互作用的敏感和直接探测。研究了不同负载下硅石-1对苯、对二甲苯和环己烷的单组分吸附。在苯吸附的情况下,FT-Raman光谱显示,在山梨酸负载4分子/单位细胞时,山梨酸相互作用的转变与晶体对称从单斜P21/n.1.1转变为正交pma相关。我们也证实了Huang (J. Am.)的研究结果。化学。Soc。在对二甲苯吸附超过4个分子的情况下,检测山梨酸诱导的从正交Pnma到正交P212121的晶体相转变。没有证据表明,在环己烷吸附的情况下,山梨酸负载的晶体相变是一个函数,这与早期的研究一致。结果表明,在苯-对二甲苯共吸附的情况下,苯和对二甲苯在各自的单组分吸附过程中进入最有利的位点。相反,当环己烷与苯或对二甲苯共吸附时,可以看到环己烷竞争相同的位点,迫使苯和对二甲苯进入不太有利的吸附位点。
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