Issue 46, 2021

Mechanism insights into the role of the support mineralization layer toward ultrathin polyamide nanofilms for ultrafast molecular separation

Abstract

In this study, a highly perm-selective thin-film composite (TFC) nanofilm was successfully developed via silicification interlayer-mediated interfacial polymerization. The silicification interlayer, fabricated in situ, significantly improved the surface hydrophilicity of the polysulfone (PSf) substrate and facilitated the high-density uptake of amine monomers. The interlayer also served as a quasi-molecular-scale regulator that decelerated the diffusion of amine monomers into the organic phase to polymerize with the acyl chloride of 1,3,5-benzenetricarbonyl trichloride (TMC). The synergistic effects triggered self-sealing and inhibited the membrane growth, which promoted the formation of ultrathin polyamide (PA) nanofilms (approx. 13 nm) with enhanced crosslinking properties. The best-performing PA_SiO2/PSf membrane exhibited a high water permeance of 14.5 L m−2 h−1 bar−1, which was approximately three times the permeance of the pristine PA membrane (4.8 L m−2 h−1 bar−1). Furthermore, the membrane exhibited a high rejection capability toward divalent salts (98.7% against Na2SO4) and mono/divalent ion selectivity of 60.9. Hence, the newly developed PA_SiO2/PSf membrane exhibits competitive separation properties compared to the state-of-the-art desalination membranes. The technique is applicable to the majority of conventional interfacial polymerizations, which highlights its use in the development of high-performance membranes for water remediation.

Graphical abstract: Mechanism insights into the role of the support mineralization layer toward ultrathin polyamide nanofilms for ultrafast molecular separation

Supplementary files

Article information

Article type
Paper
Submitted
30 Aug 2021
Accepted
05 Nov 2021
First published
05 Nov 2021

J. Mater. Chem. A, 2021,9, 26159-26171

Mechanism insights into the role of the support mineralization layer toward ultrathin polyamide nanofilms for ultrafast molecular separation

Q. Song, Y. Lin, T. Ueda, T. Istirokhatun, Q. Shen, K. Guan, T. Yoshioka and H. Matsuyama, J. Mater. Chem. A, 2021, 9, 26159 DOI: 10.1039/D1TA07413J

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