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Millisecond lattice gasification for high-density CO2- And O2-sieving nanopores in single-layer graphene
S. Huang, S. Li, L.F. Villalobos, M. Dakhchoune, M. Micari, , M.T. Vahdat, M. Mensi, E. Oveisi, K.V. Agrawal
Published in American Association for the Advancement of Science
2021
PMID: 33627433
Volume: 7
   
Issue: 9
Abstract
Etching single-layer graphene to incorporate a high pore density with sub-angstrom precision in molecular differentiation is critical to realize the promising high-flux separation of similar-sized gas molecules, e.g., CO2 from N2. However, rapid etching kinetics needed to achieve the high pore density is challenging to control for such precision. Here, we report a millisecond carbon gasification chemistry incorporating high density (>1012 cm−2) of functional oxygen clusters that then evolve in CO2-sieving vacancy defects under controlled and predictable gasification conditions. A statistical distribution of nanopore lattice isomers is observed, in good agreement with the theoretical solution to the isomer cataloging problem. The gasification technique is scalable, and a centimeter-scale membrane is demonstrated. Last, molecular cutoff could be adjusted by 0.1 Å by in situ expansion of the vacancy defects in an O2 atmosphere. Large CO2 and O2 permeances (>10,000 and 1000 GPU, respectively) are demonstrated accompanying attractive CO2/N2 and O2/N2 selectivities. Copyright © 2021 The Authors, some rights reserved; exclusive licensee American Association for the Advancement of Science. No claim to original U.S. Government Works. Distributed under a Creative Commons Attribution NonCommercial License 4.0 (CC BY-NC).
About the journal
JournalData powered by TypesetScience Advances
PublisherData powered by TypesetAmerican Association for the Advancement of Science
ISSN23752548