Faraday Discussions 2018-04-05

2D Graphene Oxide Channel for Water Transport

Baoxia Mi, Sunxiang Zheng, Qingsong Tu

Index: 10.1039/C8FD00026C

Full Text: HTML

Abstract

Layer-stacked graphene oxide (GO) membranes, in which unique two-dimensional (2D) water channels are formed between two neighboring GO nanosheets, have demonstrated great potential for aqueous phase separation. Subjects of crucial importance are to fundamentally understand the interlayer spacing (i.e., channel height) of GO membranes in aqueous environment, elucidate the mechanisms for water transport within such 2D channels, and precisely controlling the interlayer spacing to tune the membrane separation capability for targeted applications. In this investigation, we used an integrated quartz crystal mass balance (QCM-D) and ellipsometry to experimentally monitor the interlayer spacing of GO, reduced GO and crosslinked GO, respectively, in aqueous solution, and found that crosslinking can effectively prevent GO from swelling and precisely control the interlayer spacing. We then used molecular dynamics simulation to study the mass transport inside the 2D channels, and prove that the chemical functional groups on GO plane dramatically slow down water transport in the channels. Our findings on GO structure and water transport provide a necessary basis for further tailoring and optimizing the design and fabrication of GO membranes in various separation applications.

Latest Articles:

Zeolite structure determination using genetic algorithms and geometry optimisation.

2018-04-13

[10.1039/C8FD00035B]

Functionalised Microscale Nanoband Edge Electrode (MNEE) Arrays; the systematic quantitative study of hydrogels grown on nanoelectrode biosensor arrays for enhanced sensing in biological media

2018-04-12

[10.1039/C8FD00063H]

Data-driven learning and prediction of inorganic crystal structures

2018-04-12

[10.1039/C8FD00034D]

Molecular dynamics simulations of carbon nanotube porins in lipid bilayers

2018-04-11

[10.1039/C8FD00011E]

CO oxidation over supported gold nanoparticles as revealed by operando grazing incidence X-ray scattering analysis

2018-04-09

[10.1039/C8FD00007G]

More Articles...