Affiliation:
1. City University of Hong Kong Shenzhen Research Institute Shenzhen 518000 China
2. Department of Chemistry and Center of Super‐Diamond & Advanced Films City University of Hong Kong Kowloon Hong Kong P. R. China
3. Department of Applied Physics The Hong Kong Polytechnic University Kowloon Hong Kong China
4. The Hong Kong Polytechnic University Shenzhen Research Institute Shenzhen 518000 China
5. Department of Chemistry and State Key Laboratory of Marine Pollution City University of Hong Kong Kowloon Hong Kong 999077 P. R. China
Abstract
AbstractThe graphene oxide (GO) membrane displays promising potential in efficiently filtering ions from water. However, the precise mechanism behind its effectiveness remains elusive, particularly due to the lack of direct experimental evidence at the atomic scale. To shed light on this matter, state‐of‐the‐art techniques are employed such as integrated differential phase contrast‐scanning transmission electron microscopy and electron energy loss spectroscopy, combined with reverse osmosis (RO) filtration experiments using GO membranes. The atomic‐scale observations after the RO experiments directly reveal the binding of various ions including Na+, K+, Ca2+, and Fe3+ to the defects, edges, and functional groups of GO. The remarkable ion‐sieving capabilities of GO membranes are confirmed, which can be attributed to a synergistic interplay of size exclusion, electrostatic interactions, cation–π, and other non‐covalent interactions. Moreover, GO membranes modified by external pressure and cation also demonstrated further enhanced filtration performance for filtration. This study significantly contributes by uncovering the atomic‐scale mechanism responsible for ion sieving in GO membranes. These findings not only enhance the fundamental understanding but also hold substantial potential for the advancement of GO membranes in reverse osmosis (RO) filtration.
Funder
National Natural Science Foundation of China
Environment and Conservation Fund
City University of Hong Kong
Hong Kong Polytechnic University