Locking Patterned Carbon Nanotube Cages by Nanofibrous Mats to Construct Cucurbituril[n]-Based Ultrapermselective Dye/Salt Separation Membranes

Liu Lin Zhao, Xue Li Cao, Cong Luo, Qian Wang, Tian Dan Lu, Ming Jian Tang, Shi Peng Sun, Weihong Xing

Research output: Contribution to journalArticlepeer-review

15 Scopus citations

Abstract

Surface patterning is a promising strategy to overcome the trade-off effect of separation membranes. Herein, a bottom-up patterning strategy of locking micron-sized carbon nanotube cages (CNCs) onto a nanofibrous substrate is developed. The strongly enhanced capillary force triggered by the abundant narrow channels in CNCs endows the precisely patterned substrate with excellent wettability and antigravity water transport. Both are crucial for the preloading of cucurbit[n]uril (CB6)-embeded amine solution to form an ultrathin (∼20 nm) polyamide selective layer clinging to CNCs-patterned substrate. The CNCs-patterning and CB6 modification result in a 40.2% increased transmission area, a reduced thickness, and a lowered cross-linking degree of selective layer, leading to a high water permeability of 124.9 L·m-2h-1bar-1and a rejection of 99.9% for Janus Green B (511.07 Da), an order of magnitude higher than that of commercial membranes. The new patterning strategy provides technical and theoretical guidance for designing next-generation dye/salt separation membranes.

Original languageEnglish
Pages (from-to)4167-4175
Number of pages9
JournalNano Letters
Volume23
Issue number10
DOIs
StatePublished - 24 May 2023

Keywords

  • Surface patterning
  • carbon nanotube cages (CNCs)
  • cucurbit[6]uril
  • dye/salt separation membrane
  • nanofibrous substrate

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