Unexpected Self‐Assembly of Nanographene Oxide Membranes upon Electron Beam Irradiation for Ultrafast Ion Sieving

Author:

Dai Fangfang12,Gu Zonglin3,Hu Shouyuan1,Peng Bingquan2,Yang Rujie4,Jiang Jie1,Yao Lufeng5,Liang Shanshan4,Tu Yusong3,Li Pei16ORCID,Chen Liang1

Affiliation:

1. School of Physical Science and Technology Ningbo University Ningbo 315211 China

2. Wenzhou Institute University of Chinese Academy of Sciences Wenzhou Zhejiang 325000 China

3. School of Physical Science and Technology & Microelectronics Industry Research Institute Yangzhou University Jiangsu 225009 China

4. Department of Physics East China University of Science and Technology Shanghai 200237 China

5. Department of Basic Courses Naval University of Engineering Wuhan 430033 China

6. State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 China

Abstract

AbstractNanographene oxide (nGO) flakes—graphene oxide with a lateral size of ≈100 nm or less—hold great promise for superior flux and energy‐efficient nanofiltration membranes for desalination and precise ionic sieving owing to their unique high‐density water channels with less tortuousness. However, their potential usage is currently limited by several challenges, including the tricky self‐assembly of nano‐sized flakes on substrates with micron‐sized pores, severe swelling in aqueous solutions, and mechanical instability. Herein, the successful fabrication of a robust membrane stacked with nGO flakes on a substrate with a pore size of 0.22 µm by vacuum filtration is reported. This membrane achieved an unprecedented water permeance above 819.1 LMH bar−1, with a high rejection rate of 99.7% for multivalent metal ions. The nGO flakes prepared using an electron beam irradiation method, have uniquely pure hydroxyl groups and abundant aromatic regions. The calculations revealed the strong hydrogen bonds between two nGO flakes, which arise from hydroxyl groups, coupled with hydrophobic aromatic regions, greatly enhance the stability of stacked flakes in aqueous solutions and increase their effective lateral size. The research presents a simple yet effective approach toward the fabrication of advanced 2D nanographene membranes with superior performance for ion sieving applications.

Funder

Fudan University

Ningbo University

National Natural Science Foundation of China

Publisher

Wiley

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