Issue 1, 2018

One-pot synthesis of g-C3N4-doped amine-rich porous organic polymer for chlorophenol removal

Abstract

A novel graphitic carbon nitride (g-C3N4)/amine-rich porous organic polymer (RAPOP) was synthesized via one-pot polymerization using various molar ratios of melamine (MA)/terephthalaldehyde (TA)/g-C3N4 of 4/4/1, 4/4/2 and 4/4/4. The g-C3N4 was used as a supporting scaffold, and its stratified structure provided a skeleton. Polymerization between MA and TA mostly occurred on the surface of g-C3N4, which formed porous spatial structures, in particular, that of MA/TA/g-C3N4 (4/4/2), of which the surface area and pore volume reached 540.36 m2 g−1 and 1.502 cm3 g−1, respectively. Their excellent adsorption performance towards 2,4-dichlorophenol was investigated under different conditions. A solution pH of 7 was favorable for adsorption. The presence of Na+ and Cl ions had no adverse effects on the adsorption process, whereas humic acid (HA) led to a slight decrease in performance. Adsorption equilibrium was reached within 40 seconds, and the maximum adsorbed amounts were 188.70 mg g−1, 217.39 mg g−1, 238.10 mg g−1 and 270.27 mg g−1 for MA/TA (4/4), MA/TA/g-C3N4 (4/4/4), MA/TA/g-C3N4 (4/4/1) and MA/TA/g-C3N4 (4/4/2), respectively, at 298 K. Thermodynamic tests indicated that the adsorption proceeded spontaneously and endothermically. Moreover, the adsorbents maintained their high performance and stability after regeneration via treatment with alkali. This work demonstrates that g-C3N4/RAPOP can be practically employed to remove chlorophenols from aqueous solutions.

Graphical abstract: One-pot synthesis of g-C3N4-doped amine-rich porous organic polymer for chlorophenol removal

Supplementary files

Article information

Article type
Paper
Submitted
26 Aug 2017
Accepted
24 Nov 2017
First published
24 Nov 2017

Environ. Sci.: Nano, 2018,5, 169-182

One-pot synthesis of g-C3N4-doped amine-rich porous organic polymer for chlorophenol removal

H. Ou, W. Zhang, X. Yang, Q. Cheng, G. Liao, H. Xia and D. Wang, Environ. Sci.: Nano, 2018, 5, 169 DOI: 10.1039/C7EN00787F

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