• 文献标题:   Preparation of core-shell structured polystyrene @ graphene oxide composite microspheres with high adsorption capacity and its removal of dye contaminants
  • 文献类型:   Article, Early Access
  • 作  者:   CHEN W, LUAN JD, YU XK, WANG XQ, KE X
  • 作者关键词:   polystyrene, graphene oxide, composite microsphere, dye adsorption, adsorption kinetics thermodynamic
  • 出版物名称:   ENVIRONMENTAL TECHNOLOGY
  • ISSN:   0959-3330 EI 1479-487X
  • 通讯作者地址:   Shenyang Aerosp Univ
  • 被引频次:   1
  • DOI:   10.1080/09593330.2020.1743372 EA MAR 2020
  • 出版年:  

▎ 摘  要

Styrene was added dropwise to graphene dispersion solution by Pickering emulsion method to fabricate polystyrene @ graphene oxide layered composite microspheres (Pst@GO) for the removal of dye pollutants from water solution. Field emission scanning electron microscope, transmission electron microscopy, energy dispersive spectrometer, Brunauer emmett teller, zeta potential analyser and Fourier transform infrared spectrometer were adopted to analyse the changes in the microstructure and functional group of Pst@GO before and after the adsorption. The effects of initial concentration, adsorbent dose, pH, adsorption temperature and time on the adsorption behaviour of RhB and MB onto Pst@GO were studied by batch experiments. The results showed that a lot of folds on the surface of Pst@GO were beneficial to improve its adsorption capacity. The maximum adsorption capacity of RhB and MB onto Pst@GO was 49.70 and 59.07 mg g(-1) at the initial concentration of 300 mg L-1, dose 0.1 g, pH = 7.0, adsorption temperature 55 degrees C, adsorption time 2 h. The adsorption kinetics and thermodynamics analysis indicated that the adsorption of two dyes onto Pst@GO was endothermic reaction, while electrostatic attraction and hydrogen bonding are the main driving forces for the adsorption reaction. Polystyrene @ graphene oxide layered composite microspheres (Pst@GO) were prepared by Pickering emulsion method to remove dye pollutants in water. The preparation process of Pst@GO is as follows: Figure 1 Schematic fabrication process of Pst@GO.