| Literature DB >> 35044780 |
Daniil Naberezhnyi1, Lukas Mai2, Nassar Doudin3, Inga Ennen1, Andreas Hütten1, Eric I Altman3, Anjana Devi2, Petr Dementyev1.
Abstract
Graphene and other single-layer structures are pursued as high-flux separation membranes, although imparting porosity endangers their crystalline integrity. In contrast, bilayer silica composed of corner-sharing (SiO4) units is foreseen to be permeable for small molecules due to its intrinsic lattice openings. This study sheds light on the mass transport properties of freestanding 2D SiO2 upon using atomic layer deposition (ALD) to grow large-area films on Au/mica substrates followed by transfer onto Si3N4 windows. Permeation experiments with gaseous and vaporous substances reveal the suspended material to be porous, but the membrane selectivity appears to diverge from the size exclusion principle. Whereas the passage of inert gas molecules is hindered with a permeance below 10-7 mol·s-1·m-2·Pa-1, condensable species like water are found to cross vitreous bilayer silica a thousand times faster in accordance with their superficial affinity. This work paves the way for bilayer oxides to be addressed as inherent 2D membranes.Entities:
Keywords: adsorption; atomic layer deposition; bilayer silica; gas permeation; two-dimensional membranes
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Year: 2022 PMID: 35044780 DOI: 10.1021/acs.nanolett.1c04535
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189