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Antibacterial, high-flux and 3D porous molecularly imprinted nanocomposite sponge membranes for cross-flow filtration of emodin from analogues

  • Jian Lu
  • , Yingying Qin
  • , Qi Zhang
  • , Chao Yu
  • , Yilin Wu
  • , Yongsheng Yan
  • , Hougang Fan
  • , Minjia Meng
  • , Chunxiang Li
  • Jiangsu University

Research output: Contribution to journalArticlepeer-review

72 Scopus citations

Abstract

Sponge is widely used in our daily life as a low-cost and easily available material. Its three-dimensional (3D) porous structure is particularly suitable for the application of membrane-based separation. Herein, we report an antibacterial, high-flux and 3D porous molecularly imprinted nanocomposite sponge membranes (Emodin-MIS) based on sponge for cross-flow filtration of emodin from analogues (aloe-emodin and physcion). A GO/Ag/KH570 modification strategy was implemented to (i) provide ‘active secondary platforms’ (ii) increase the antibacterial property, and (iii) facilitate the fixation of molecularly imprinted polymers. Base on formation of ‘emodin-recognition sites’ optimal selectivity of emodin/aloe-emodin (1.61) and emodin/physcion (1.70) in static adsorption, as well as aloe-emodin/emodin (7.66–3.93) and physcion/emodin (10.00–4.68) in cross-flow filtration, were achieved on Emodin-MIS with the imprinting factor of 3.28. Langmuir isothermal model and pseudo-second-order kinetic model best fitted rebinding data of Emodin-MIS. Specifically, the rebinding capacity of Emodin-MIS was still higher than 85% of initial after 10 regeneration cycles which included an interval of 15 days. This novel-designed Emodin-MIS exhibits superior results for emodin separation in cross-flow filtration and shows promising potentials for wider applications.

Original languageEnglish
Pages (from-to)483-493
Number of pages11
JournalChemical Engineering Journal
Volume360
DOIs
StatePublished - 15 Mar 2019
Externally publishedYes

Keywords

  • 3D porous
  • Antibacterial
  • Emodin
  • High-flux
  • Molecularly imprinted membrane

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