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Frontiers of Chemical Science and Engineering

ISSN 2095-0179

ISSN 2095-0187(Online)

CN 11-5981/TQ

邮发代号 80-969

2019 Impact Factor: 3.552

Frontiers of Chemical Science and Engineering  2013, Vol. 7 Issue (2): 162-169   https://doi.org/10.1007/s11705-013-1318-5
  RESEARCH ARTICLE 本期目录
Selective removal of phenol by spherical particles of α-, β- and BoldItalic-cyclodextrin polymers: kinetics and isothermal equilibrium
Selective removal of phenol by spherical particles of α-, β- and BoldItalic-cyclodextrin polymers: kinetics and isothermal equilibrium
Qingchuan CHEN, Yicun WEN, Yu CANG, Li LI, Xuhong GUO, Rui ZHANG()
State Key Laboratory of Chemical Engineering, East China University of Science and Technology, Shanghai 200237, China
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Abstract

Spherical particles of α-, β- and γ-cyclodextrin (CD) polymers to efficiently remove phenol from waste water were prepared by reverse suspension polymerization with epichlorohydrin as crosslinker in liquid paraffin. By controlling the amounts of crosslinker and water, well-defined spherical polymer particles with controllable size were obtained. Due to the selective inclusion associations between CD groups and phenol, these CD spherical polymer particles were demonstrated to be ideal candidates for removal of phenol. Among them β-CD polymer particles showed the best performance. The kinetics and isothermal equilibrium models were used to fit the experimental data of phenol removal from aqueous solution using these CD polymer particles. It was found that the kinetics followed the Ho and Mckay equation, suggesting that the adsorption process of phenol was controlled by diffusion and the host-guest interaction between CD and phenol. Equilibrium isothermal data can be well fitted by the Freundlich equation. The negative free energy change indicated the spontaneous nature of adsorption of phenol by α-, β- and γ-CD spherical polymer particles, while the lowest free energy for β-CD polymer reflected its best adsorption ability, compared to α- and γ-CD polymer particles.

Key wordscyclodextrin polymer particles    phenol    kinetic models    adsorption isotherm equilibrium models
收稿日期: 2012-10-24      出版日期: 2013-06-05
Corresponding Author(s): ZHANG Rui,Email:r.zhang@ecust.edu.cn   
 引用本文:   
. Selective removal of phenol by spherical particles of α-, β- and BoldItalic-cyclodextrin polymers: kinetics and isothermal equilibrium[J]. Frontiers of Chemical Science and Engineering, 2013, 7(2): 162-169.
Qingchuan CHEN, Yicun WEN, Yu CANG, Li LI, Xuhong GUO, Rui ZHANG. Selective removal of phenol by spherical particles of α-, β- and BoldItalic-cyclodextrin polymers: kinetics and isothermal equilibrium. Front Chem Sci Eng, 2013, 7(2): 162-169.
 链接本文:  
https://academic.hep.com.cn/fcse/CN/10.1007/s11705-013-1318-5
https://academic.hep.com.cn/fcse/CN/Y2013/V7/I2/162
Fig.1  
Fig.2  
Fig.3  
Fig.4  
Fig.5  
CD polymerC0 /(mg?L-1)qe experiment/(mg?g-1)k2 ×10-3/(g?mg-1?min-1)qe calculated/(mg?g-1)R2
α-CD polymer1020405060801001.94.48.410.013.019.021.635.211.74.52.11.81.20.92.04.79.211.815.024.822.80.9970.9950.9920.9710.9810.9790.967
β-CD polymer1020405060801002.65.811.113.216.624.429.635.939.09.18.66.95.03.02.75.911.513.717.125.330.80.9990.9990.9980.9990.9990.9990.995
γ-CD polymer1020405060801000.51.12.12.53.44.65.967.2--30.012.612.77.700.61.12.32.73.84.96.50.9920.9990.9940.9940.9930.9950.993
Tab.1  
Fig.6  
CD polymerKF /(L?g-1)1/nFR2ΔG /(kJ?mol-1)
α-CD polymerβ-CD polymerγ-CD polymer3.2545.1551.6491.1901.2401.1100.9930.9960.997-2.924-4.063-1.239
Tab.2  
Fig.7  
Fig.8  
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