Issue 24, 2021

Hierarchical dual-nanonet of polymer nanofibers and supramolecular nanofibrils for air filtration with a high filtration efficiency, low air resistance and high moisture permeation

Abstract

Air pollution and public health incidents have become a serious global concern. Hierarchical nanofibrous membranes are considered as high-performance filters with an advanced structure, but their reliable fabrication is still challenging. Herein, a novel methodology involving the combination of a multi-orifices solution blowing technique process and low molecule organogel self-assembly strategy is reported to construct a hierarchical dual-nanonet of polymer nanofibers and supramolecular nanofibrils. Through an adsorption–nucleation–growth model, ultrathin supramolecular nanofibrils (10–30 nm) were assembled in situ within a fluffy solution-blown nanofiber mat with strong inter-fiber connections. Benefiting from the synergistic effects of the ultrathin diameter, small pore size, high porosity and stable inter-fiber connections, the hierarchical dual-nanonet demonstrates robust mechanical strength, a high filtration efficiency (99.999% for 0.3 μm), low pressure drop (32 Pa), a high quality factor (0.189 Pa−1), and a boosted moisture permeation. The comprehensive performances indicate promising applications in various filtration applications, especially in the field of personal protective equipment.

Graphical abstract: Hierarchical dual-nanonet of polymer nanofibers and supramolecular nanofibrils for air filtration with a high filtration efficiency, low air resistance and high moisture permeation

Supplementary files

Article information

Article type
Paper
Submitted
20 Feb 2021
Accepted
22 May 2021
First published
25 May 2021

J. Mater. Chem. A, 2021,9, 14093-14100

Hierarchical dual-nanonet of polymer nanofibers and supramolecular nanofibrils for air filtration with a high filtration efficiency, low air resistance and high moisture permeation

M. Hu, Y. Wang, Z. Yan, G. Zhao, Y. Zhao, L. Xia, B. Cheng, Y. Di and X. Zhuang, J. Mater. Chem. A, 2021, 9, 14093 DOI: 10.1039/D1TA01505B

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