Facile large-area fabrication of highly selective and permeable few-layered graphene: A molecular dynamics study. (December 2019)
- Record Type:
- Journal Article
- Title:
- Facile large-area fabrication of highly selective and permeable few-layered graphene: A molecular dynamics study. (December 2019)
- Main Title:
- Facile large-area fabrication of highly selective and permeable few-layered graphene: A molecular dynamics study
- Authors:
- Jhon, Young In
Kim, Chulki
Byun, Young Tae
Lee, Ju Han
Jhon, Young Min - Abstract:
- Abstract: Nanoporous graphene has unprecedented high permeability due to its ultrathin nature, whose efficiency surpasses that of conventional diffusive polymer membranes by several orders. However, large-area production of nanoporous graphene has been severely limited by difficult nanopore fabrication, framework defects, and reactive grain boundaries, which significantly hampered its practical applications. Here, using molecular dynamics simulation, we propose that large-area nanoporous few-layered graphene can be easily fabricated by repeated processes of dispersed oxidation and reductive nanoetching. Its core process was validated by showing feasible nanoetching of oxidized surface carbons under impulse energy irradiation on few-layered graphene while pristine surface carbons, beneath carbon layers, grain boundaries, and Stone-Thrower-Wales defects can robustly maintained their original structures. Using nonequilibrium atomistic simulations, we also demonstrated that nanoporous few-layered graphene can desalinate salt water completely with the same ultrahigh energy efficiency as that of nanoporous single-layer graphene, at least up to four layer thickness. In-depth investigation on the transport mode consistently showed that water permeation through this membrane operates in the nondiffusive regime. This study strongly suggests that few-layered graphene can be a promising matrix of atomically thin nanoporous membranes in terms of productivity and performance, opening aAbstract: Nanoporous graphene has unprecedented high permeability due to its ultrathin nature, whose efficiency surpasses that of conventional diffusive polymer membranes by several orders. However, large-area production of nanoporous graphene has been severely limited by difficult nanopore fabrication, framework defects, and reactive grain boundaries, which significantly hampered its practical applications. Here, using molecular dynamics simulation, we propose that large-area nanoporous few-layered graphene can be easily fabricated by repeated processes of dispersed oxidation and reductive nanoetching. Its core process was validated by showing feasible nanoetching of oxidized surface carbons under impulse energy irradiation on few-layered graphene while pristine surface carbons, beneath carbon layers, grain boundaries, and Stone-Thrower-Wales defects can robustly maintained their original structures. Using nonequilibrium atomistic simulations, we also demonstrated that nanoporous few-layered graphene can desalinate salt water completely with the same ultrahigh energy efficiency as that of nanoporous single-layer graphene, at least up to four layer thickness. In-depth investigation on the transport mode consistently showed that water permeation through this membrane operates in the nondiffusive regime. This study strongly suggests that few-layered graphene can be a promising matrix of atomically thin nanoporous membranes in terms of productivity and performance, opening a new avenue toward innovative membrane technologies. Graphical abstract: Image 1 … (more)
- Is Part Of:
- Carbon. Volume 155(2019)
- Journal:
- Carbon
- Issue:
- Volume 155(2019)
- Issue Display:
- Volume 155, Issue 2019 (2019)
- Year:
- 2019
- Volume:
- 155
- Issue:
- 2019
- Issue Sort Value:
- 2019-0155-2019-0000
- Page Start:
- 369
- Page End:
- 378
- Publication Date:
- 2019-12
- Subjects:
- Carbon -- Periodicals
Carbone -- Périodiques
Koolstof
Toepassingen
Electronic journals
546.681 - Journal URLs:
- http://www.sciencedirect.com/science/journal/00086223 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.carbon.2019.08.082 ↗
- Languages:
- English
- ISSNs:
- 0008-6223
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 3050.991000
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 12034.xml