Separation of 2,6-dimethylnaphthalene from a mixture of its isomers using lithium-incorporated zeolite Y synthesized by rapid crystallization method

被引:15
作者
Inui, T
Pu, SB
机构
[1] Division of Energy and Hydrocarbon Chemistry, Graduate School of Engineering, Kyoto University, Sakyo-ku, Kyoto
来源
SEPARATIONS TECHNOLOGY | 1995年 / 5卷 / 04期
关键词
lithium-incorporated zeolite Y; effective pore size; ion site; separation of 2,6-dimethylnaphthalene; adsorption; desorption; kinetic diameter;
D O I
10.1016/0956-9618(95)00127-1
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Lithium-incorporated zeolite Ys (Li-NaYs) were directly synthesized under a hydrothermal condition from a gel mixture of Li2O . Na2O . SiO2 . Al2O3 . H2O. It was confirmed by XRD, NMR and elementary analysis, that lithium ions could be introduced onto the ion sites of zeolite Y during the course of crystallization. Usage of lithium citrate as the lithium source is the indispensable factor to achieve the synthesis. In adsorption of mixtures of 2,6-dimethylnaphthalene and its isomers, Li-NaYs exhibited greater adsorptive capacities and higher adsorption selectivities to 2,6-dimethylnaphthalene than NaY. Direct hydrothermal synthesis of Li-incorporated zeolite Y prevents the blockage of pore openings and/or channels during lithium ion-exchange. Furthermore, the difference in adsorptive properties between Li-NaY and Li ion-exchanged NaY is due to Li ions being introduced onto the S-1 ion sites, which can hardly be ion-exchanged, during the hydrothermal synthesis.
引用
收藏
页码:229 / 237
页数:9
相关论文
共 16 条
[1]  
Shiroto, Trend of production technologies of naphthalene derivatives for high performance engineering plastics, Aromatics, 43, 1 · 2, pp. 7-23, (1991)
[2]  
Shiroto, Trend of production technologies of naphthalene derivatives for high performance engineering plastics, Aromatics, 43, 3-4 ssd, pp. 1-14, (1991)
[3]  
Maki, Yokoyama, Nakanishi, Separation of 2,6-dimethylnaphthalene, (1988)
[4]  
Maki, Yokoyama, Nakanishi, Separation of 2,6-dimethylnaphthalene, (1988)
[5]  
Maki, Yokoyama, Nakanishi, Separation of 2,6-dimethylnaphthalene, (1988)
[6]  
Maki, Yokoyama, Nakanishi, Separation of 2,6-dimethylnaphthalene, (1989)
[7]  
Sherry, The ion-exchange properties of zeolites: 1. Univalent ion-exchange in synthetic faujasite, J. Phys. Chem., 70, pp. 1158-1168, (1966)
[8]  
Inui, Okugawa, Yasuda, Characteristics and performance of CO<sub>2</sub> adsorption on various zeolites by pressure-swing adsorption method, Chem. Express, 1, pp. 57-60, (1986)
[9]  
Inui, Mechanism of rapid zeolite crystallizations and its applications to catalyst synthesis, ACS Symp. Series, 398, pp. 479-492, (1989)
[10]  
Miyazaki, Arika, Aimoto, Synthesis of faujasite-type zeolite, (1986)